subset
stringclasses
6 values
context
stringlengths
16
17.7k
context_tokens
dict
qid
stringlengths
32
32
question
stringlengths
1
717
question_tokens
dict
detected_answers
dict
answers
listlengths
1
25
SQuAD
The energy levels of hydrogen can be calculated fairly accurately using the Bohr model of the atom, which conceptualizes the electron as "orbiting" the proton in analogy to the Earth's orbit of the Sun. However, the electromagnetic force attracts electrons and protons to one another, while planets and celestial objects...
{ "tokens": [ "The", "energy", "levels", "of", "hydrogen", "can", "be", "calculated", "fairly", "accurately", "using", "the", "Bohr", "model", "of", "the", "atom", ",", "which", "conceptualizes", "the", "electron", "as", "...
b011cf9f6c5a46cfa3ab15728a629c94
What attracts planets and celestial items?
{ "tokens": [ "What", "attracts", "planets", "and", "celestial", "items", "?" ], "offsets": [ 0, 5, 14, 22, 26, 36, 41 ] }
{ "text": [ "gravity" ], "char_spans": [ { "start": [ 352 ], "end": [ 358 ] } ], "token_spans": [ { "start": [ 63 ], "end": [ 63 ] } ] }
[ "gravity" ]
SQuAD
The energy levels of hydrogen can be calculated fairly accurately using the Bohr model of the atom, which conceptualizes the electron as "orbiting" the proton in analogy to the Earth's orbit of the Sun. However, the electromagnetic force attracts electrons and protons to one another, while planets and celestial objects...
{ "tokens": [ "The", "energy", "levels", "of", "hydrogen", "can", "be", "calculated", "fairly", "accurately", "using", "the", "Bohr", "model", "of", "the", "atom", ",", "which", "conceptualizes", "the", "electron", "as", "...
af613190703e41a891e838d84934611b
What does the electromagnetic force attract to one another?
{ "tokens": [ "What", "does", "the", "electromagnetic", "force", "attract", "to", "one", "another", "?" ], "offsets": [ 0, 5, 10, 14, 30, 36, 44, 47, 51, 58 ] }
{ "text": [ "electrons and protons" ], "char_spans": [ { "start": [ 247 ], "end": [ 267 ] } ], "token_spans": [ { "start": [ 45 ], "end": [ 47 ] } ] }
[ "electrons and protons" ]
SQuAD
Hydrogen has three naturally occurring isotopes, denoted 1H, 2H and 3H. Other, highly unstable nuclei (4H to 7H) have been synthesized in the laboratory but not observed in nature.
{ "tokens": [ "Hydrogen", "has", "three", "naturally", "occurring", "isotopes", ",", "denoted", "1H", ",", "2H", "and", "3H.", "Other", ",", "highly", "unstable", "nuclei", "(", "4H", "to", "7H", ")", "have", "been", ...
af8f62fe02b34904b20b20400c07aee1
Which isotopes have unstable nuclei?
{ "tokens": [ "Which", "isotopes", "have", "unstable", "nuclei", "?" ], "offsets": [ 0, 6, 15, 20, 29, 35 ] }
{ "text": [ "4H to 7H" ], "char_spans": [ { "start": [ 103 ], "end": [ 110 ] } ], "token_spans": [ { "start": [ 19 ], "end": [ 21 ] } ] }
[ "4H to 7H" ]
SQuAD
During periods of unemployment, there has been a long pattern of emigration from the island since the post-Napoleonic period. The majority of "Saints" emigrated to the UK, South Africa and in the early years, Australia. The population has steadily declined since the late 1980s and has dropped from 5,157 at the 1998 cen...
{ "tokens": [ "During", "periods", "of", "unemployment", ",", "there", "has", "been", "a", "long", "pattern", "of", "emigration", "from", "the", "island", "since", "the", "post", "-", "Napoleonic", "period", ".", "The", ...
b500a97d189649338a9c70a0985d799e
What was there a long pattern of from the island starting during the post Napoleonic period?
{ "tokens": [ "What", "was", "there", "a", "long", "pattern", "of", "from", "the", "island", "starting", "during", "the", "post", "Napoleonic", "period", "?" ], "offsets": [ 0, 5, 9, 15, 17, 22, 30, 33, 38, ...
{ "text": [ "emigration" ], "char_spans": [ { "start": [ 65 ], "end": [ 74 ] } ], "token_spans": [ { "start": [ 12 ], "end": [ 12 ] } ] }
[ "emigration" ]
SQuAD
During periods of unemployment, there has been a long pattern of emigration from the island since the post-Napoleonic period. The majority of "Saints" emigrated to the UK, South Africa and in the early years, Australia. The population has steadily declined since the late 1980s and has dropped from 5,157 at the 1998 cen...
{ "tokens": [ "During", "periods", "of", "unemployment", ",", "there", "has", "been", "a", "long", "pattern", "of", "emigration", "from", "the", "island", "since", "the", "post", "-", "Napoleonic", "period", ".", "The", ...
45c1c6180d1e40c38409529856234b59
When did the population of the island start to steadily decline?
{ "tokens": [ "When", "did", "the", "population", "of", "the", "island", "start", "to", "steadily", "decline", "?" ], "offsets": [ 0, 5, 9, 13, 24, 27, 31, 38, 44, 47, 56, 63 ] }
{ "text": [ "late 1980s" ], "char_spans": [ { "start": [ 267 ], "end": [ 276 ] } ], "token_spans": [ { "start": [ 51 ], "end": [ 52 ] } ] }
[ "late 1980s" ]
SQuAD
During periods of unemployment, there has been a long pattern of emigration from the island since the post-Napoleonic period. The majority of "Saints" emigrated to the UK, South Africa and in the early years, Australia. The population has steadily declined since the late 1980s and has dropped from 5,157 at the 1998 cen...
{ "tokens": [ "During", "periods", "of", "unemployment", ",", "there", "has", "been", "a", "long", "pattern", "of", "emigration", "from", "the", "island", "since", "the", "post", "-", "Napoleonic", "period", ".", "The", ...
d215878fa15b482f8cde98cca9a05960
What was a big factor in emmigration to the UK?
{ "tokens": [ "What", "was", "a", "big", "factor", "in", "emmigration", "to", "the", "UK", "?" ], "offsets": [ 0, 5, 9, 11, 15, 22, 25, 37, 40, 44, 46 ] }
{ "text": [ "prospect of higher wages" ], "char_spans": [ { "start": [ 632 ], "end": [ 655 ] } ], "token_spans": [ { "start": [ 123 ], "end": [ 126 ] } ] }
[ "prospect of higher wages" ]
SQuAD
The uncatalyzed interconversion between para and ortho H2 increases with increasing temperature; thus rapidly condensed H2 contains large quantities of the high-energy ortho form that converts to the para form very slowly. The ortho/para ratio in condensed H2 is an important consideration in the preparation and storage...
{ "tokens": [ "The", "uncatalyzed", "interconversion", "between", "para", "and", "ortho", "H2", "increases", "with", "increasing", "temperature", ";", "thus", "rapidly", "condensed", "H2", "contains", "large", "quantities", "of", ...
22f1227603d34c0fb7c782ebea020005
What are some catalysts used in hydrogen cooling
{ "tokens": [ "What", "are", "some", "catalysts", "used", "in", "hydrogen", "cooling" ], "offsets": [ 0, 5, 9, 14, 24, 29, 32, 41 ] }
{ "text": [ "ferric oxide, activated carbon, platinized asbestos, rare earth metals, uranium compounds, chromic oxide, or some nickel compounds" ], "char_spans": [ { "start": [ 549 ], "end": [ 678 ] } ], "token_spans": [ { "start": [ 94 ...
[ "ferric oxide, activated carbon, platinized asbestos, rare earth metals, uranium compounds, chromic oxide, or some nickel compounds" ]
SQuAD
To avoid the implication of the naked "solvated proton" in solution, acidic aqueous solutions are sometimes considered to contain a less unlikely fictitious species, termed the "hydronium ion" (H 3O+). However, even in this case, such solvated hydrogen cations are more realistically conceived as being organized into cl...
{ "tokens": [ "To", "avoid", "the", "implication", "of", "the", "naked", "\"", "solvated", "proton", "\"", "in", "solution", ",", "acidic", "aqueous", "solutions", "are", "sometimes", "considered", "to", "contain", "a", "l...
634696a39bf54fb0aa46d3624b6eba63
Where can oxonium ions be found?
{ "tokens": [ "Where", "can", "oxonium", "ions", "be", "found", "?" ], "offsets": [ 0, 6, 10, 18, 23, 26, 31 ] }
{ "text": [ "in acidic solution with other solvents" ], "char_spans": [ { "start": [ 407 ], "end": [ 444 ] } ], "token_spans": [ { "start": [ 76 ], "end": [ 81 ] } ] }
[ "in acidic solution with other solvents" ]
SQuAD
To avoid the implication of the naked "solvated proton" in solution, acidic aqueous solutions are sometimes considered to contain a less unlikely fictitious species, termed the "hydronium ion" (H 3O+). However, even in this case, such solvated hydrogen cations are more realistically conceived as being organized into cl...
{ "tokens": [ "To", "avoid", "the", "implication", "of", "the", "naked", "\"", "solvated", "proton", "\"", "in", "solution", ",", "acidic", "aqueous", "solutions", "are", "sometimes", "considered", "to", "contain", "a", "l...
06b65da8bb004e938021a13a3b2693f9
What other term is a solvated protons referred as?
{ "tokens": [ "What", "other", "term", "is", "a", "solvated", "protons", "referred", "as", "?" ], "offsets": [ 0, 5, 11, 16, 19, 21, 30, 38, 47, 49 ] }
{ "text": [ "hydronium ion" ], "char_spans": [ { "start": [ 178 ], "end": [ 190 ] } ], "token_spans": [ { "start": [ 31 ], "end": [ 32 ] } ] }
[ "hydronium ion" ]
SQuAD
A bare proton, H+, cannot exist in solution or in ionic crystals, because of its unstoppable attraction to other atoms or molecules with electrons. Except at the high temperatures associated with plasmas, such protons cannot be removed from the electron clouds of atoms and molecules, and will remain attached to them. H...
{ "tokens": [ "A", "bare", "proton", ",", "H+", ",", "can", "not", "exist", "in", "solution", "or", "in", "ionic", "crystals", ",", "because", "of", "its", "unstoppable", "attraction", "to", "other", "atoms", "or", ...
edce1a5d9b414f29b1b8441fb564d153
What is another term for a bare proton?
{ "tokens": [ "What", "is", "another", "term", "for", "a", "bare", "proton", "?" ], "offsets": [ 0, 5, 8, 16, 21, 25, 27, 32, 38 ] }
{ "text": [ "H+" ], "char_spans": [ { "start": [ 15 ], "end": [ 16 ] } ], "token_spans": [ { "start": [ 4 ], "end": [ 4 ] } ] }
[ "H+" ]
SQuAD
Coulton Waugh attempted the first comprehensive history of American comics with The Comics (1947). Will Eisner's Comics and Sequential Art (1985) and Scott McCloud's Understanding Comics (1993) were early attempts in English to formalize the study of comics. David Carrier's The Aesthetics of Comics (2000) was the first...
{ "tokens": [ "Coulton", "Waugh", "attempted", "the", "first", "comprehensive", "history", "of", "American", "comics", "with", "The", "Comics", "(", "1947", ")", ".", "Will", "Eisner", "'s", "Comics", "and", "Sequential", ...
7f053dfcb786427e99a3c141801b3345
Who put together a history of American comics in 1947?
{ "tokens": [ "Who", "put", "together", "a", "history", "of", "American", "comics", "in", "1947", "?" ], "offsets": [ 0, 4, 8, 17, 19, 27, 30, 39, 46, 49, 53 ] }
{ "text": [ "Coulton Waugh" ], "char_spans": [ { "start": [ 0 ], "end": [ 12 ] } ], "token_spans": [ { "start": [ 0 ], "end": [ 1 ] } ] }
[ "Coulton Waugh" ]
SQuAD
Coulton Waugh attempted the first comprehensive history of American comics with The Comics (1947). Will Eisner's Comics and Sequential Art (1985) and Scott McCloud's Understanding Comics (1993) were early attempts in English to formalize the study of comics. David Carrier's The Aesthetics of Comics (2000) was the first...
{ "tokens": [ "Coulton", "Waugh", "attempted", "the", "first", "comprehensive", "history", "of", "American", "comics", "with", "The", "Comics", "(", "1947", ")", ".", "Will", "Eisner", "'s", "Comics", "and", "Sequential", ...
3851347136084cbead424c061f16eb26
What was the name of Waugh's work?
{ "tokens": [ "What", "was", "the", "name", "of", "Waugh", "'s", "work", "?" ], "offsets": [ 0, 5, 9, 13, 18, 21, 26, 29, 33 ] }
{ "text": [ "The Comics" ], "char_spans": [ { "start": [ 80 ], "end": [ 89 ] } ], "token_spans": [ { "start": [ 11 ], "end": [ 12 ] } ] }
[ "The Comics" ]
SQuAD
Coulton Waugh attempted the first comprehensive history of American comics with The Comics (1947). Will Eisner's Comics and Sequential Art (1985) and Scott McCloud's Understanding Comics (1993) were early attempts in English to formalize the study of comics. David Carrier's The Aesthetics of Comics (2000) was the first...
{ "tokens": [ "Coulton", "Waugh", "attempted", "the", "first", "comprehensive", "history", "of", "American", "comics", "with", "The", "Comics", "(", "1947", ")", ".", "Will", "Eisner", "'s", "Comics", "and", "Sequential", ...
52a9480c93714ae88685b7102cd0f9ed
Who created a book about comics from a philosophical point of view?
{ "tokens": [ "Who", "created", "a", "book", "about", "comics", "from", "a", "philosophical", "point", "of", "view", "?" ], "offsets": [ 0, 4, 12, 14, 19, 25, 32, 37, 39, 53, 59, 62, 66 ] }
{ "text": [ "David Carrier" ], "char_spans": [ { "start": [ 259 ], "end": [ 271 ] } ], "token_spans": [ { "start": [ 48 ], "end": [ 49 ] } ] }
[ "David Carrier" ]
SQuAD
Coulton Waugh attempted the first comprehensive history of American comics with The Comics (1947). Will Eisner's Comics and Sequential Art (1985) and Scott McCloud's Understanding Comics (1993) were early attempts in English to formalize the study of comics. David Carrier's The Aesthetics of Comics (2000) was the first...
{ "tokens": [ "Coulton", "Waugh", "attempted", "the", "first", "comprehensive", "history", "of", "American", "comics", "with", "The", "Comics", "(", "1947", ")", ".", "Will", "Eisner", "'s", "Comics", "and", "Sequential", ...
d491299c0ba14c7da349f15403d5b2c0
What book did Will Eisner create in 1985?
{ "tokens": [ "What", "book", "did", "Will", "Eisner", "create", "in", "1985", "?" ], "offsets": [ 0, 5, 10, 14, 19, 26, 33, 36, 40 ] }
{ "text": [ "Comics and Sequential Art" ], "char_spans": [ { "start": [ 113 ], "end": [ 137 ] } ], "token_spans": [ { "start": [ 20 ], "end": [ 23 ] } ] }
[ "Comics and Sequential Art" ]
SQuAD
In the same year the first hydrogen-cooled turbogenerator went into service with gaseous hydrogen as a coolant in the rotor and the stator in 1937 at Dayton, Ohio, by the Dayton Power & Light Co.; because of the thermal conductivity of hydrogen gas, this is the most common type in its field today.
{ "tokens": [ "In", "the", "same", "year", "the", "first", "hydrogen", "-", "cooled", "turbogenerator", "went", "into", "service", "with", "gaseous", "hydrogen", "as", "a", "coolant", "in", "the", "rotor", "and", "the", ...
db4a738422cd4520b33bb7453df04a49
In what year did the first hydrogen cooled turbogenerator go into service?
{ "tokens": [ "In", "what", "year", "did", "the", "first", "hydrogen", "cooled", "turbogenerator", "go", "into", "service", "?" ], "offsets": [ 0, 3, 8, 13, 17, 21, 27, 36, 43, 58, 61, 66, 73 ] }
{ "text": [ "1937" ], "char_spans": [ { "start": [ 142 ], "end": [ 145 ] } ], "token_spans": [ { "start": [ 26 ], "end": [ 26 ] } ] }
[ "1937" ]
SQuAD
In the same year the first hydrogen-cooled turbogenerator went into service with gaseous hydrogen as a coolant in the rotor and the stator in 1937 at Dayton, Ohio, by the Dayton Power & Light Co.; because of the thermal conductivity of hydrogen gas, this is the most common type in its field today.
{ "tokens": [ "In", "the", "same", "year", "the", "first", "hydrogen", "-", "cooled", "turbogenerator", "went", "into", "service", "with", "gaseous", "hydrogen", "as", "a", "coolant", "in", "the", "rotor", "and", "the", ...
ffac59a91e3842ca8f703ba4b1181b0e
What state is the Dayton Power and light Company located?
{ "tokens": [ "What", "state", "is", "the", "Dayton", "Power", "and", "light", "Company", "located", "?" ], "offsets": [ 0, 5, 11, 14, 18, 25, 31, 35, 41, 49, 56 ] }
{ "text": [ "Ohio" ], "char_spans": [ { "start": [ 158 ], "end": [ 161 ] } ], "token_spans": [ { "start": [ 30 ], "end": [ 30 ] } ] }
[ "Ohio" ]
SQuAD
In 1671, Robert Boyle discovered and described the reaction between iron filings and dilute acids, which results in the production of hydrogen gas. In 1766, Henry Cavendish was the first to recognize hydrogen gas as a discrete substance, by naming the gas from a metal-acid reaction "flammable air". He speculated that "...
{ "tokens": [ "In", "1671", ",", "Robert", "Boyle", "discovered", "and", "described", "the", "reaction", "between", "iron", "filings", "and", "dilute", "acids", ",", "which", "results", "in", "the", "production", "of", "hy...
7d3a36b1c48643749836dc510328b73f
What year was the discovery of hydrogen gas?
{ "tokens": [ "What", "year", "was", "the", "discovery", "of", "hydrogen", "gas", "?" ], "offsets": [ 0, 5, 10, 14, 18, 28, 31, 40, 43 ] }
{ "text": [ "1671" ], "char_spans": [ { "start": [ 3 ], "end": [ 6 ] } ], "token_spans": [ { "start": [ 1 ], "end": [ 1 ] } ] }
[ "1671" ]
SQuAD
In 1671, Robert Boyle discovered and described the reaction between iron filings and dilute acids, which results in the production of hydrogen gas. In 1766, Henry Cavendish was the first to recognize hydrogen gas as a discrete substance, by naming the gas from a metal-acid reaction "flammable air". He speculated that "...
{ "tokens": [ "In", "1671", ",", "Robert", "Boyle", "discovered", "and", "described", "the", "reaction", "between", "iron", "filings", "and", "dilute", "acids", ",", "which", "results", "in", "the", "production", "of", "hy...
f1091387494d449da0b9a0d7fbb6492e
Who discovered Hydrogen gas?
{ "tokens": [ "Who", "discovered", "Hydrogen", "gas", "?" ], "offsets": [ 0, 4, 15, 24, 27 ] }
{ "text": [ "Robert Boyle" ], "char_spans": [ { "start": [ 9 ], "end": [ 20 ] } ], "token_spans": [ { "start": [ 3 ], "end": [ 4 ] } ] }
[ "Robert Boyle" ]
SQuAD
In 1671, Robert Boyle discovered and described the reaction between iron filings and dilute acids, which results in the production of hydrogen gas. In 1766, Henry Cavendish was the first to recognize hydrogen gas as a discrete substance, by naming the gas from a metal-acid reaction "flammable air". He speculated that "...
{ "tokens": [ "In", "1671", ",", "Robert", "Boyle", "discovered", "and", "described", "the", "reaction", "between", "iron", "filings", "and", "dilute", "acids", ",", "which", "results", "in", "the", "production", "of", "hy...
afb2da98f0114cdf87551ea53e74bfaf
Who recognized hydrogen gas as a discreet substance?
{ "tokens": [ "Who", "recognized", "hydrogen", "gas", "as", "a", "discreet", "substance", "?" ], "offsets": [ 0, 4, 15, 24, 28, 31, 33, 42, 51 ] }
{ "text": [ "Henry Cavendish" ], "char_spans": [ { "start": [ 157 ], "end": [ 171 ] } ], "token_spans": [ { "start": [ 29 ], "end": [ 30 ] } ] }
[ "Henry Cavendish" ]
SQuAD
In 1671, Robert Boyle discovered and described the reaction between iron filings and dilute acids, which results in the production of hydrogen gas. In 1766, Henry Cavendish was the first to recognize hydrogen gas as a discrete substance, by naming the gas from a metal-acid reaction "flammable air". He speculated that "...
{ "tokens": [ "In", "1671", ",", "Robert", "Boyle", "discovered", "and", "described", "the", "reaction", "between", "iron", "filings", "and", "dilute", "acids", ",", "which", "results", "in", "the", "production", "of", "hy...
438fdbec2fdb4745bbdc5cfe2aee5636
In what year did Henry Cavendish recognize hydrogen gas as a discreet substance?
{ "tokens": [ "In", "what", "year", "did", "Henry", "Cavendish", "recognize", "hydrogen", "gas", "as", "a", "discreet", "substance", "?" ], "offsets": [ 0, 3, 8, 13, 17, 23, 33, 43, 52, 56, 59, 61, 70, ...
{ "text": [ "1766" ], "char_spans": [ { "start": [ 151 ], "end": [ 154 ] } ], "token_spans": [ { "start": [ 27 ], "end": [ 27 ] } ] }
[ "1766" ]
SQuAD
In 1671, Robert Boyle discovered and described the reaction between iron filings and dilute acids, which results in the production of hydrogen gas. In 1766, Henry Cavendish was the first to recognize hydrogen gas as a discrete substance, by naming the gas from a metal-acid reaction "flammable air". He speculated that "...
{ "tokens": [ "In", "1671", ",", "Robert", "Boyle", "discovered", "and", "described", "the", "reaction", "between", "iron", "filings", "and", "dilute", "acids", ",", "which", "results", "in", "the", "production", "of", "hy...
90313043ce8b46fc9728e9ca0931b1ba
What does gas produce when burned?
{ "tokens": [ "What", "does", "gas", "produce", "when", "burned", "?" ], "offsets": [ 0, 5, 10, 14, 22, 27, 33 ] }
{ "text": [ "water" ], "char_spans": [ { "start": [ 457 ], "end": [ 461 ] } ], "token_spans": [ { "start": [ 86 ], "end": [ 86 ] } ] }
[ "water" ]
SQuAD
While H2 is not very reactive under standard conditions, it does form compounds with most elements. Hydrogen can form compounds with elements that are more electronegative, such as halogens (e.g., F, Cl, Br, I), or oxygen; in these compounds hydrogen takes on a partial positive charge. When bonded to fluorine, oxygen, ...
{ "tokens": [ "While", "H2", "is", "not", "very", "reactive", "under", "standard", "conditions", ",", "it", "does", "form", "compounds", "with", "most", "elements", ".", "Hydrogen", "can", "form", "compounds", "with", "ele...
bc5d6a3ef56547c6b8f68dfe15c3d919
What ind of charge does hydrogen take when mixed with electronegative particles?
{ "tokens": [ "What", "ind", "of", "charge", "does", "hydrogen", "take", "when", "mixed", "with", "electronegative", "particles", "?" ], "offsets": [ 0, 5, 9, 12, 19, 24, 33, 38, 43, 49, 54, 70, 79 ] }
{ "text": [ "positive charge" ], "char_spans": [ { "start": [ 270 ], "end": [ 284 ] } ], "token_spans": [ { "start": [ 55 ], "end": [ 56 ] } ] }
[ "positive charge" ]
SQuAD
While H2 is not very reactive under standard conditions, it does form compounds with most elements. Hydrogen can form compounds with elements that are more electronegative, such as halogens (e.g., F, Cl, Br, I), or oxygen; in these compounds hydrogen takes on a partial positive charge. When bonded to fluorine, oxygen, ...
{ "tokens": [ "While", "H2", "is", "not", "very", "reactive", "under", "standard", "conditions", ",", "it", "does", "form", "compounds", "with", "most", "elements", ".", "Hydrogen", "can", "form", "compounds", "with", "ele...
7f4310fc95324dfd9d3c0e90ecb2c25b
When hydrogen forms with a metal, what is the compound called?
{ "tokens": [ "When", "hydrogen", "forms", "with", "a", "metal", ",", "what", "is", "the", "compound", "called", "?" ], "offsets": [ 0, 5, 14, 20, 25, 27, 32, 34, 39, 42, 46, 55, 61 ] }
{ "text": [ "hydrides" ], "char_spans": [ { "start": [ 734 ], "end": [ 741 ] } ], "token_spans": [ { "start": [ 134 ], "end": [ 134 ] } ] }
[ "hydrides" ]
SQuAD
While H2 is not very reactive under standard conditions, it does form compounds with most elements. Hydrogen can form compounds with elements that are more electronegative, such as halogens (e.g., F, Cl, Br, I), or oxygen; in these compounds hydrogen takes on a partial positive charge. When bonded to fluorine, oxygen, ...
{ "tokens": [ "While", "H2", "is", "not", "very", "reactive", "under", "standard", "conditions", ",", "it", "does", "form", "compounds", "with", "most", "elements", ".", "Hydrogen", "can", "form", "compounds", "with", "ele...
e17df93f3077402bad662bc7a9b2afed
Is H2 reactive in standard conditions?
{ "tokens": [ "Is", "H2", "reactive", "in", "standard", "conditions", "?" ], "offsets": [ 0, 3, 6, 15, 18, 27, 37 ] }
{ "text": [ "not" ], "char_spans": [ { "start": [ 12 ], "end": [ 14 ] } ], "token_spans": [ { "start": [ 3 ], "end": [ 3 ] } ] }
[ "not" ]
SQuAD
Because of its simple atomic structure, consisting only of a proton and an electron, the hydrogen atom, together with the spectrum of light produced from it or absorbed by it, has been central to the development of the theory of atomic structure. Furthermore, the corresponding simplicity of the hydrogen molecule and th...
{ "tokens": [ "Because", "of", "its", "simple", "atomic", "structure", ",", "consisting", "only", "of", "a", "proton", "and", "an", "electron", ",", "the", "hydrogen", "atom", ",", "together", "with", "the", "spectrum", ...
c34ec6cab6024015baca12f7242d51d7
What is the hydrogen atom made up of?
{ "tokens": [ "What", "is", "the", "hydrogen", "atom", "made", "up", "of", "?" ], "offsets": [ 0, 5, 8, 12, 21, 26, 31, 34, 36 ] }
{ "text": [ "a proton and an electron" ], "char_spans": [ { "start": [ 59 ], "end": [ 82 ] } ], "token_spans": [ { "start": [ 10 ], "end": [ 14 ] } ] }
[ "a proton and an electron" ]
SQuAD
Because of its simple atomic structure, consisting only of a proton and an electron, the hydrogen atom, together with the spectrum of light produced from it or absorbed by it, has been central to the development of the theory of atomic structure. Furthermore, the corresponding simplicity of the hydrogen molecule and th...
{ "tokens": [ "Because", "of", "its", "simple", "atomic", "structure", ",", "consisting", "only", "of", "a", "proton", "and", "an", "electron", ",", "the", "hydrogen", "atom", ",", "together", "with", "the", "spectrum", ...
7574b22c01cd4a6abbcbbc68603935e9
What theory is the hydrogen atom a big part of?
{ "tokens": [ "What", "theory", "is", "the", "hydrogen", "atom", "a", "big", "part", "of", "?" ], "offsets": [ 0, 5, 12, 15, 19, 28, 33, 35, 39, 44, 46 ] }
{ "text": [ "atomic structure" ], "char_spans": [ { "start": [ 22 ], "end": [ 37 ] } ], "token_spans": [ { "start": [ 4 ], "end": [ 5 ] } ] }
[ "atomic structure" ]
SQuAD
The first non-stop transatlantic crossing was made by the British airship R34 in 1919. Regular passenger service resumed in the 1920s and the discovery of helium reserves in the United States promised increased safety, but the U.S. government refused to sell the gas for this purpose. Therefore, H2 was used in the Hinde...
{ "tokens": [ "The", "first", "non", "-", "stop", "transatlantic", "crossing", "was", "made", "by", "the", "British", "airship", "R34", "in", "1919", ".", "Regular", "passenger", "service", "resumed", "in", "the", "1920s",...
ff54af86c998435cbbdf541aa7467b08
Who made the first non stop transatlantic crossing?
{ "tokens": [ "Who", "made", "the", "first", "non", "stop", "transatlantic", "crossing", "?" ], "offsets": [ 0, 4, 9, 13, 19, 23, 28, 42, 50 ] }
{ "text": [ "the British" ], "char_spans": [ { "start": [ 54 ], "end": [ 64 ] } ], "token_spans": [ { "start": [ 10 ], "end": [ 11 ] } ] }
[ "the British" ]
SQuAD
The first non-stop transatlantic crossing was made by the British airship R34 in 1919. Regular passenger service resumed in the 1920s and the discovery of helium reserves in the United States promised increased safety, but the U.S. government refused to sell the gas for this purpose. Therefore, H2 was used in the Hinde...
{ "tokens": [ "The", "first", "non", "-", "stop", "transatlantic", "crossing", "was", "made", "by", "the", "British", "airship", "R34", "in", "1919", ".", "Regular", "passenger", "service", "resumed", "in", "the", "1920s",...
bf9884f1b4074b4794392389505f3c48
What year was this done?
{ "tokens": [ "What", "year", "was", "this", "done", "?" ], "offsets": [ 0, 5, 10, 14, 19, 23 ] }
{ "text": [ "1919" ], "char_spans": [ { "start": [ 81 ], "end": [ 84 ] } ], "token_spans": [ { "start": [ 15 ], "end": [ 15 ] } ] }
[ "1919" ]
SQuAD
The first non-stop transatlantic crossing was made by the British airship R34 in 1919. Regular passenger service resumed in the 1920s and the discovery of helium reserves in the United States promised increased safety, but the U.S. government refused to sell the gas for this purpose. Therefore, H2 was used in the Hinde...
{ "tokens": [ "The", "first", "non", "-", "stop", "transatlantic", "crossing", "was", "made", "by", "the", "British", "airship", "R34", "in", "1919", ".", "Regular", "passenger", "service", "resumed", "in", "the", "1920s",...
4eee540c8f9a4bc78d1a11132ed17a6a
What year did the airship get destroyed?
{ "tokens": [ "What", "year", "did", "the", "airship", "get", "destroyed", "?" ], "offsets": [ 0, 5, 10, 14, 18, 26, 30, 39 ] }
{ "text": [ "1937" ], "char_spans": [ { "start": [ 397 ], "end": [ 400 ] } ], "token_spans": [ { "start": [ 74 ], "end": [ 74 ] } ] }
[ "1937" ]
SQuAD
The first non-stop transatlantic crossing was made by the British airship R34 in 1919. Regular passenger service resumed in the 1920s and the discovery of helium reserves in the United States promised increased safety, but the U.S. government refused to sell the gas for this purpose. Therefore, H2 was used in the Hinde...
{ "tokens": [ "The", "first", "non", "-", "stop", "transatlantic", "crossing", "was", "made", "by", "the", "British", "airship", "R34", "in", "1919", ".", "Regular", "passenger", "service", "resumed", "in", "the", "1920s",...
9a63c63921744ba3b11432e1342dfa8b
What city was the ship over when it caught fire?
{ "tokens": [ "What", "city", "was", "the", "ship", "over", "when", "it", "caught", "fire", "?" ], "offsets": [ 0, 5, 10, 14, 18, 23, 28, 33, 36, 43, 47 ] }
{ "text": [ "New Jersey" ], "char_spans": [ { "start": [ 377 ], "end": [ 386 ] } ], "token_spans": [ { "start": [ 69 ], "end": [ 70 ] } ] }
[ "New Jersey" ]
SQuAD
The nickel hydrogen battery was used for the first time in 1977 aboard the U.S. Navy's Navigation technology satellite-2 (NTS-2). For example, the ISS, Mars Odyssey and the Mars Global Surveyor are equipped with nickel-hydrogen batteries. In the dark part of its orbit, the Hubble Space Telescope is also powered by nick...
{ "tokens": [ "The", "nickel", "hydrogen", "battery", "was", "used", "for", "the", "first", "time", "in", "1977", "aboard", "the", "U.S.", "Navy", "'s", "Navigation", "technology", "satellite-2", "(", "NTS-2", ")", ".", ...
f70aa15f3c7a45c19cc7a6bb1ba0f403
What year was the first nickel hydrogen battery used?
{ "tokens": [ "What", "year", "was", "the", "first", "nickel", "hydrogen", "battery", "used", "?" ], "offsets": [ 0, 5, 10, 14, 18, 24, 31, 40, 48, 52 ] }
{ "text": [ "1977" ], "char_spans": [ { "start": [ 59 ], "end": [ 62 ] } ], "token_spans": [ { "start": [ 11 ], "end": [ 11 ] } ] }
[ "1977" ]
SQuAD
The nickel hydrogen battery was used for the first time in 1977 aboard the U.S. Navy's Navigation technology satellite-2 (NTS-2). For example, the ISS, Mars Odyssey and the Mars Global Surveyor are equipped with nickel-hydrogen batteries. In the dark part of its orbit, the Hubble Space Telescope is also powered by nick...
{ "tokens": [ "The", "nickel", "hydrogen", "battery", "was", "used", "for", "the", "first", "time", "in", "1977", "aboard", "the", "U.S.", "Navy", "'s", "Navigation", "technology", "satellite-2", "(", "NTS-2", ")", ".", ...
429561eb2b244db996689a6fe3991b38
In what year did the hubble space telescope finally get the nickel hydrogen battery?
{ "tokens": [ "In", "what", "year", "did", "the", "hubble", "space", "telescope", "finally", "get", "the", "nickel", "hydrogen", "battery", "?" ], "offsets": [ 0, 3, 8, 13, 17, 21, 28, 34, 44, 52, 56, 60, ...
{ "text": [ "2009" ], "char_spans": [ { "start": [ 378 ], "end": [ 381 ] } ], "token_spans": [ { "start": [ 72 ], "end": [ 72 ] } ] }
[ "2009" ]
SQuAD
Compounds of hydrogen are often called hydrides, a term that is used fairly loosely. The term "hydride" suggests that the H atom has acquired a negative or anionic character, denoted H−, and is used when hydrogen forms a compound with a more electropositive element. The existence of the hydride anion, suggested by Gilb...
{ "tokens": [ "Compounds", "of", "hydrogen", "are", "often", "called", "hydrides", ",", "a", "term", "that", "is", "used", "fairly", "loosely", ".", "The", "term", "\"", "hydride", "\"", "suggests", "that", "the", "H",...
f2a883d67d834997a4af2aa2d5fc521f
Who suggested that hydride anions existed?character does the H atom have in a hydride?
{ "tokens": [ " ", "Who", "suggested", "that", "hydride", "anions", "existed?character", "does", "the", "H", "atom", "have", "in", "a", "hydride", "?" ], "offsets": [ 0, 1, 5, 15, 20, 28, 35, 53, 58, 62, 64...
{ "text": [ "Gilbert N. Lewis" ], "char_spans": [ { "start": [ 316 ], "end": [ 331 ] } ], "token_spans": [ { "start": [ 60 ], "end": [ 62 ] } ] }
[ "Gilbert N. Lewis" ]
SQuAD
Compounds of hydrogen are often called hydrides, a term that is used fairly loosely. The term "hydride" suggests that the H atom has acquired a negative or anionic character, denoted H−, and is used when hydrogen forms a compound with a more electropositive element. The existence of the hydride anion, suggested by Gilb...
{ "tokens": [ "Compounds", "of", "hydrogen", "are", "often", "called", "hydrides", ",", "a", "term", "that", "is", "used", "fairly", "loosely", ".", "The", "term", "\"", "hydride", "\"", "suggests", "that", "the", "H",...
fe712d982096459686ea2c32d8337ffe
What group of hydrides is BEH considered polymeric?
{ "tokens": [ "What", "group", "of", "hydrides", "is", "BEH", "considered", "polymeric", "?" ], "offsets": [ 0, 5, 11, 14, 23, 26, 30, 41, 50 ] }
{ "text": [ "group II" ], "char_spans": [ { "start": [ 672 ], "end": [ 679 ] } ], "token_spans": [ { "start": [ 128 ], "end": [ 129 ] } ] }
[ "group II" ]
SQuAD
H 2 is produced in chemistry and biology laboratories, often as a by-product of other reactions; in industry for the hydrogenation of unsaturated substrates; and in nature as a means of expelling reducing equivalents in biochemical reactions.
{ "tokens": [ "H", "2", "is", "produced", "in", "chemistry", "and", "biology", "laboratories", ",", "often", "as", "a", "by", "-", "product", "of", "other", "reactions", ";", "in", "industry", "for", "the", "hydrogenat...
2d42e00e60fd4a1e84a2e92af554b3dc
How does nature produce H2?
{ "tokens": [ "How", "does", "nature", "produce", "H2", "?" ], "offsets": [ 0, 4, 9, 16, 24, 26 ] }
{ "text": [ "expelling reducing equivalents in biochemical reactions" ], "char_spans": [ { "start": [ 186 ], "end": [ 240 ] } ], "token_spans": [ { "start": [ 36 ], "end": [ 41 ] } ] }
[ "expelling reducing equivalents in biochemical reactions" ]
SQuAD
H 2 is produced in chemistry and biology laboratories, often as a by-product of other reactions; in industry for the hydrogenation of unsaturated substrates; and in nature as a means of expelling reducing equivalents in biochemical reactions.
{ "tokens": [ "H", "2", "is", "produced", "in", "chemistry", "and", "biology", "laboratories", ",", "often", "as", "a", "by", "-", "product", "of", "other", "reactions", ";", "in", "industry", "for", "the", "hydrogenat...
b55161ec090b42919fff966b15cd9f8b
How do labs produce H2?
{ "tokens": [ "How", "do", "labs", "produce", "H2", "?" ], "offsets": [ 0, 4, 7, 12, 20, 22 ] }
{ "text": [ "by-product of other reactions" ], "char_spans": [ { "start": [ 66 ], "end": [ 94 ] } ], "token_spans": [ { "start": [ 13 ], "end": [ 18 ] } ] }
[ "by-product of other reactions" ]
SQuAD
Hydrogen is the only element that has different names for its isotopes in common use today. During the early study of radioactivity, various heavy radioactive isotopes were given their own names, but such names are no longer used, except for deuterium and tritium. The symbols D and T (instead of 2H and 3H) are sometime...
{ "tokens": [ "Hydrogen", "is", "the", "only", "element", "that", "has", "different", "names", "for", "its", "isotopes", "in", "common", "use", "today", ".", "During", "the", "early", "study", "of", "radioactivity", ",", ...
4862aa7717fb4aadbdf24f7f0c51f264
Which element is the only that has different names for its isotopes?
{ "tokens": [ "Which", "element", "is", "the", "only", "that", "has", "different", "names", "for", "its", "isotopes", "?" ], "offsets": [ 0, 6, 14, 17, 21, 26, 31, 35, 45, 51, 55, 59, 67 ] }
{ "text": [ "Hydrogen" ], "char_spans": [ { "start": [ 0 ], "end": [ 7 ] } ], "token_spans": [ { "start": [ 0 ], "end": [ 0 ] } ] }
[ "Hydrogen" ]
SQuAD
Hydrogen is the only element that has different names for its isotopes in common use today. During the early study of radioactivity, various heavy radioactive isotopes were given their own names, but such names are no longer used, except for deuterium and tritium. The symbols D and T (instead of 2H and 3H) are sometime...
{ "tokens": [ "Hydrogen", "is", "the", "only", "element", "that", "has", "different", "names", "for", "its", "isotopes", "in", "common", "use", "today", ".", "During", "the", "early", "study", "of", "radioactivity", ",", ...
978b1cd57c14409787256c08f27bdf2f
What are the only two names still used for radioactive isotopes?
{ "tokens": [ "What", "are", "the", "only", "two", "names", "still", "used", "for", "radioactive", "isotopes", "?" ], "offsets": [ 0, 5, 9, 13, 18, 22, 28, 34, 39, 43, 55, 63 ] }
{ "text": [ "deuterium and tritium" ], "char_spans": [ { "start": [ 242 ], "end": [ 262 ] } ], "token_spans": [ { "start": [ 44 ], "end": [ 46 ] } ] }
[ "deuterium and tritium" ]
SQuAD
Hydrogen is the only element that has different names for its isotopes in common use today. During the early study of radioactivity, various heavy radioactive isotopes were given their own names, but such names are no longer used, except for deuterium and tritium. The symbols D and T (instead of 2H and 3H) are sometime...
{ "tokens": [ "Hydrogen", "is", "the", "only", "element", "that", "has", "different", "names", "for", "its", "isotopes", "in", "common", "use", "today", ".", "During", "the", "early", "study", "of", "radioactivity", ",", ...
ec37e904023040378419e8ba331ac0d7
What are the symbols used for deuterium and tritium?
{ "tokens": [ "What", "are", "the", "symbols", "used", "for", "deuterium", "and", "tritium", "?" ], "offsets": [ 0, 5, 9, 13, 21, 26, 30, 40, 44, 51 ] }
{ "text": [ "D and T" ], "char_spans": [ { "start": [ 277 ], "end": [ 283 ] } ], "token_spans": [ { "start": [ 50 ], "end": [ 52 ] } ] }
[ "D and T" ]
SQuAD
Hydrogen is the only element that has different names for its isotopes in common use today. During the early study of radioactivity, various heavy radioactive isotopes were given their own names, but such names are no longer used, except for deuterium and tritium. The symbols D and T (instead of 2H and 3H) are sometime...
{ "tokens": [ "Hydrogen", "is", "the", "only", "element", "that", "has", "different", "names", "for", "its", "isotopes", "in", "common", "use", "today", ".", "During", "the", "early", "study", "of", "radioactivity", ",", ...
829399b0a6c24aedb0583735acad2c76
What does the symbol P represent?
{ "tokens": [ "What", "does", "the", "symbol", "P", "represent", "?" ], "offsets": [ 0, 5, 10, 14, 21, 23, 32 ] }
{ "text": [ "phosphorus" ], "char_spans": [ { "start": [ 421 ], "end": [ 430 ] } ], "token_spans": [ { "start": [ 82 ], "end": [ 82 ] } ] }
[ "phosphorus" ]
SQuAD
Hydrogen is the only element that has different names for its isotopes in common use today. During the early study of radioactivity, various heavy radioactive isotopes were given their own names, but such names are no longer used, except for deuterium and tritium. The symbols D and T (instead of 2H and 3H) are sometime...
{ "tokens": [ "Hydrogen", "is", "the", "only", "element", "that", "has", "different", "names", "for", "its", "isotopes", "in", "common", "use", "today", ".", "During", "the", "early", "study", "of", "radioactivity", ",", ...
0745a1c7c52b4000b25b9d1950ef768d
What are the preferred symbols for deuterium and tritium?
{ "tokens": [ "What", "are", "the", "preferred", "symbols", "for", "deuterium", "and", "tritium", "?" ], "offsets": [ 0, 5, 9, 13, 23, 31, 35, 45, 49, 56 ] }
{ "text": [ "2H and 3H" ], "char_spans": [ { "start": [ 297 ], "end": [ 305 ] } ], "token_spans": [ { "start": [ 56 ], "end": [ 58 ] } ] }
[ "2H and 3H" ]
SQuAD
Hydrogen was liquefied for the first time by James Dewar in 1898 by using regenerative cooling and his invention, the vacuum flask. He produced solid hydrogen the next year. Deuterium was discovered in December 1931 by Harold Urey, and tritium was prepared in 1934 by Ernest Rutherford, Mark Oliphant, and Paul Harteck. ...
{ "tokens": [ "Hydrogen", "was", "liquefied", "for", "the", "first", "time", "by", "James", "Dewar", "in", "1898", "by", "using", "regenerative", "cooling", "and", "his", "invention", ",", "the", "vacuum", "flask", ".", ...
0a800782bb8041bb8c9ccc574db3a4ce
Who was the first to liquidize hydrogen?
{ "tokens": [ "Who", "was", "the", "first", "to", "liquidize", "hydrogen", "?" ], "offsets": [ 0, 4, 8, 12, 18, 21, 31, 39 ] }
{ "text": [ "James Dewar" ], "char_spans": [ { "start": [ 45 ], "end": [ 55 ] } ], "token_spans": [ { "start": [ 8 ], "end": [ 9 ] } ] }
[ "James Dewar" ]
SQuAD
Hydrogen was liquefied for the first time by James Dewar in 1898 by using regenerative cooling and his invention, the vacuum flask. He produced solid hydrogen the next year. Deuterium was discovered in December 1931 by Harold Urey, and tritium was prepared in 1934 by Ernest Rutherford, Mark Oliphant, and Paul Harteck. ...
{ "tokens": [ "Hydrogen", "was", "liquefied", "for", "the", "first", "time", "by", "James", "Dewar", "in", "1898", "by", "using", "regenerative", "cooling", "and", "his", "invention", ",", "the", "vacuum", "flask", ".", ...
a5f2122803a14148bb90a9d19277be02
In what year Did James Dewar first liquidize hydrogen?
{ "tokens": [ "In", "what", "year", "Did", "James", "Dewar", "first", "liquidize", "hydrogen", "?" ], "offsets": [ 0, 3, 8, 13, 17, 23, 29, 35, 45, 53 ] }
{ "text": [ "1898" ], "char_spans": [ { "start": [ 60 ], "end": [ 63 ] } ], "token_spans": [ { "start": [ 11 ], "end": [ 11 ] } ] }
[ "1898" ]
SQuAD
Hydrogen was liquefied for the first time by James Dewar in 1898 by using regenerative cooling and his invention, the vacuum flask. He produced solid hydrogen the next year. Deuterium was discovered in December 1931 by Harold Urey, and tritium was prepared in 1934 by Ernest Rutherford, Mark Oliphant, and Paul Harteck. ...
{ "tokens": [ "Hydrogen", "was", "liquefied", "for", "the", "first", "time", "by", "James", "Dewar", "in", "1898", "by", "using", "regenerative", "cooling", "and", "his", "invention", ",", "the", "vacuum", "flask", ".", ...
9e835e87b6a9490f860d0b289d214f26
What year was Deuterium discovered?
{ "tokens": [ "What", "year", "was", "Deuterium", "discovered", "?" ], "offsets": [ 0, 5, 10, 14, 24, 34 ] }
{ "text": [ "1931" ], "char_spans": [ { "start": [ 211 ], "end": [ 214 ] } ], "token_spans": [ { "start": [ 37 ], "end": [ 37 ] } ] }
[ "1931" ]
SQuAD
Hydrogen was liquefied for the first time by James Dewar in 1898 by using regenerative cooling and his invention, the vacuum flask. He produced solid hydrogen the next year. Deuterium was discovered in December 1931 by Harold Urey, and tritium was prepared in 1934 by Ernest Rutherford, Mark Oliphant, and Paul Harteck. ...
{ "tokens": [ "Hydrogen", "was", "liquefied", "for", "the", "first", "time", "by", "James", "Dewar", "in", "1898", "by", "using", "regenerative", "cooling", "and", "his", "invention", ",", "the", "vacuum", "flask", ".", ...
f52d7224baf04687bd745254c84e30e2
Who was the first to discover deuterium?
{ "tokens": [ "Who", "was", "the", "first", "to", "discover", "deuterium", "?" ], "offsets": [ 0, 4, 8, 12, 18, 21, 30, 39 ] }
{ "text": [ "Harold Urey" ], "char_spans": [ { "start": [ 219 ], "end": [ 229 ] } ], "token_spans": [ { "start": [ 39 ], "end": [ 40 ] } ] }
[ "Harold Urey" ]
SQuAD
Hydrogen was liquefied for the first time by James Dewar in 1898 by using regenerative cooling and his invention, the vacuum flask. He produced solid hydrogen the next year. Deuterium was discovered in December 1931 by Harold Urey, and tritium was prepared in 1934 by Ernest Rutherford, Mark Oliphant, and Paul Harteck. ...
{ "tokens": [ "Hydrogen", "was", "liquefied", "for", "the", "first", "time", "by", "James", "Dewar", "in", "1898", "by", "using", "regenerative", "cooling", "and", "his", "invention", ",", "the", "vacuum", "flask", ".", ...
bd4aa34517bb45c89c6ca237bec70c58
What year was tritium discovered?
{ "tokens": [ "What", "year", "was", "tritium", "discovered", "?" ], "offsets": [ 0, 5, 10, 14, 22, 32 ] }
{ "text": [ "1934" ], "char_spans": [ { "start": [ 260 ], "end": [ 263 ] } ], "token_spans": [ { "start": [ 47 ], "end": [ 47 ] } ] }
[ "1934" ]
SQuAD
Hydrogen forms a vast array of compounds with carbon called the hydrocarbons, and an even vaster array with heteroatoms that, because of their general association with living things, are called organic compounds. The study of their properties is known as organic chemistry and their study in the context of living organi...
{ "tokens": [ "Hydrogen", "forms", "a", "vast", "array", "of", "compounds", "with", "carbon", "called", "the", "hydrocarbons", ",", "and", "an", "even", "vaster", "array", "with", "heteroatoms", "that", ",", "because", "of...
f6de45b4239b455a9d1b6baed2d74962
What is the form of hydrogen and carbon called?
{ "tokens": [ "What", "is", "the", "form", "of", "hydrogen", "and", "carbon", "called", "?" ], "offsets": [ 0, 5, 8, 12, 17, 20, 29, 33, 40, 46 ] }
{ "text": [ "hydrocarbons" ], "char_spans": [ { "start": [ 64 ], "end": [ 75 ] } ], "token_spans": [ { "start": [ 11 ], "end": [ 11 ] } ] }
[ "hydrocarbons" ]
SQuAD
Hydrogen forms a vast array of compounds with carbon called the hydrocarbons, and an even vaster array with heteroatoms that, because of their general association with living things, are called organic compounds. The study of their properties is known as organic chemistry and their study in the context of living organi...
{ "tokens": [ "Hydrogen", "forms", "a", "vast", "array", "of", "compounds", "with", "carbon", "called", "the", "hydrocarbons", ",", "and", "an", "even", "vaster", "array", "with", "heteroatoms", "that", ",", "because", "of...
01b724cc90744285871a253661d7001f
What is the form of hydrogen and heteroatoms called?
{ "tokens": [ "What", "is", "the", "form", "of", "hydrogen", "and", "heteroatoms", "called", "?" ], "offsets": [ 0, 5, 8, 12, 17, 20, 29, 33, 45, 51 ] }
{ "text": [ "organic compounds" ], "char_spans": [ { "start": [ 194 ], "end": [ 210 ] } ], "token_spans": [ { "start": [ 33 ], "end": [ 34 ] } ] }
[ "organic compounds" ]
SQuAD
Hydrogen forms a vast array of compounds with carbon called the hydrocarbons, and an even vaster array with heteroatoms that, because of their general association with living things, are called organic compounds. The study of their properties is known as organic chemistry and their study in the context of living organi...
{ "tokens": [ "Hydrogen", "forms", "a", "vast", "array", "of", "compounds", "with", "carbon", "called", "the", "hydrocarbons", ",", "and", "an", "even", "vaster", "array", "with", "heteroatoms", "that", ",", "because", "of...
866225a0d90b4db3ac986b7c29144bc1
What is the study of organic compounds properties known as?
{ "tokens": [ "What", "is", "the", "study", "of", "organic", "compounds", "properties", "known", "as", "?" ], "offsets": [ 0, 5, 8, 12, 18, 21, 29, 39, 50, 56, 58 ] }
{ "text": [ "organic chemistry" ], "char_spans": [ { "start": [ 255 ], "end": [ 271 ] } ], "token_spans": [ { "start": [ 44 ], "end": [ 45 ] } ] }
[ "organic chemistry" ]
SQuAD
Hydrogen forms a vast array of compounds with carbon called the hydrocarbons, and an even vaster array with heteroatoms that, because of their general association with living things, are called organic compounds. The study of their properties is known as organic chemistry and their study in the context of living organi...
{ "tokens": [ "Hydrogen", "forms", "a", "vast", "array", "of", "compounds", "with", "carbon", "called", "the", "hydrocarbons", ",", "and", "an", "even", "vaster", "array", "with", "heteroatoms", "that", ",", "because", "of...
be6e7db860f1423781e00f77de0cf79d
What is the study of living organisms known as?
{ "tokens": [ "What", "is", "the", "study", "of", "living", "organisms", "known", "as", "?" ], "offsets": [ 0, 5, 8, 12, 18, 21, 28, 38, 44, 46 ] }
{ "text": [ "biochemistry" ], "char_spans": [ { "start": [ 336 ], "end": [ 347 ] } ], "token_spans": [ { "start": [ 58 ], "end": [ 58 ] } ] }
[ "biochemistry" ]
SQuAD
Hydrogen forms a vast array of compounds with carbon called the hydrocarbons, and an even vaster array with heteroatoms that, because of their general association with living things, are called organic compounds. The study of their properties is known as organic chemistry and their study in the context of living organi...
{ "tokens": [ "Hydrogen", "forms", "a", "vast", "array", "of", "compounds", "with", "carbon", "called", "the", "hydrocarbons", ",", "and", "an", "even", "vaster", "array", "with", "heteroatoms", "that", ",", "because", "of...
e263d256dfe849fe9a22bec3914bf91b
Organic compounds are only required to conatin what?
{ "tokens": [ "Organic", "compounds", "are", "only", "required", "to", "conatin", "what", "?" ], "offsets": [ 0, 8, 18, 22, 27, 36, 39, 47, 51 ] }
{ "text": [ "carbon" ], "char_spans": [ { "start": [ 46 ], "end": [ 51 ] } ], "token_spans": [ { "start": [ 8 ], "end": [ 8 ] } ] }
[ "carbon" ]
SQuAD
The universal emergence of atomic hydrogen first occurred during the recombination epoch. At standard temperature and pressure, hydrogen is a colorless, odorless, tasteless, non-toxic, nonmetallic, highly combustible diatomic gas with the molecular formula H2. Since hydrogen readily forms covalent compounds with most n...
{ "tokens": [ "The", "universal", "emergence", "of", "atomic", "hydrogen", "first", "occurred", "during", "the", "recombination", "epoch", ".", "At", "standard", "temperature", "and", "pressure", ",", "hydrogen", "is", "a", "c...
f4559d48d20544f296ac419fffdd3f72
What form can you find hydrogen is on Earth?
{ "tokens": [ "What", "form", "can", "you", "find", "hydrogen", "is", "on", "Earth", "?" ], "offsets": [ 0, 5, 10, 14, 18, 23, 32, 35, 38, 43 ] }
{ "text": [ "molecular" ], "char_spans": [ { "start": [ 239 ], "end": [ 247 ] } ], "token_spans": [ { "start": [ 40 ], "end": [ 40 ] } ] }
[ "molecular" ]
SQuAD
The universal emergence of atomic hydrogen first occurred during the recombination epoch. At standard temperature and pressure, hydrogen is a colorless, odorless, tasteless, non-toxic, nonmetallic, highly combustible diatomic gas with the molecular formula H2. Since hydrogen readily forms covalent compounds with most n...
{ "tokens": [ "The", "universal", "emergence", "of", "atomic", "hydrogen", "first", "occurred", "during", "the", "recombination", "epoch", ".", "At", "standard", "temperature", "and", "pressure", ",", "hydrogen", "is", "a", "c...
0e3466c26cb348e08ae2ced98ff7671d
What is the molecular make-up of hydrogen?
{ "tokens": [ "What", "is", "the", "molecular", "make", "-", "up", "of", "hydrogen", "?" ], "offsets": [ 0, 5, 8, 12, 22, 26, 27, 30, 33, 41 ] }
{ "text": [ "H2" ], "char_spans": [ { "start": [ 257 ], "end": [ 258 ] } ], "token_spans": [ { "start": [ 42 ], "end": [ 42 ] } ] }
[ "H2" ]
SQuAD
The universal emergence of atomic hydrogen first occurred during the recombination epoch. At standard temperature and pressure, hydrogen is a colorless, odorless, tasteless, non-toxic, nonmetallic, highly combustible diatomic gas with the molecular formula H2. Since hydrogen readily forms covalent compounds with most n...
{ "tokens": [ "The", "universal", "emergence", "of", "atomic", "hydrogen", "first", "occurred", "during", "the", "recombination", "epoch", ".", "At", "standard", "temperature", "and", "pressure", ",", "hydrogen", "is", "a", "c...
2313aa7e242044bab601417e49257101
What are three properties of hydrogen at normal temperature and normal pressure?
{ "tokens": [ "What", "are", "three", "properties", "of", "hydrogen", "at", "normal", "temperature", "and", "normal", "pressure", "?" ], "offsets": [ 0, 5, 9, 15, 26, 29, 38, 41, 48, 60, 64, 71, 79 ] }
{ "text": [ "colorless, odorless, tasteless" ], "char_spans": [ { "start": [ 142 ], "end": [ 171 ] } ], "token_spans": [ { "start": [ 22 ], "end": [ 26 ] } ] }
[ "colorless, odorless, tasteless" ]
SQuAD
The universal emergence of atomic hydrogen first occurred during the recombination epoch. At standard temperature and pressure, hydrogen is a colorless, odorless, tasteless, non-toxic, nonmetallic, highly combustible diatomic gas with the molecular formula H2. Since hydrogen readily forms covalent compounds with most n...
{ "tokens": [ "The", "universal", "emergence", "of", "atomic", "hydrogen", "first", "occurred", "during", "the", "recombination", "epoch", ".", "At", "standard", "temperature", "and", "pressure", ",", "hydrogen", "is", "a", "c...
02f104ee7c9e47b697e30a6610855f52
What charge does hydrogen display in ionic compounds when it is called a hydride?
{ "tokens": [ "What", "charge", "does", "hydrogen", "display", "in", "ionic", "compounds", "when", "it", "is", "called", "a", "hydride", "?" ], "offsets": [ 0, 5, 12, 17, 26, 34, 37, 43, 53, 58, 61, 64, ...
{ "text": [ "negative" ], "char_spans": [ { "start": [ 656 ], "end": [ 663 ] } ], "token_spans": [ { "start": [ 115 ], "end": [ 115 ] } ] }
[ "negative" ]
SQuAD
The universal emergence of atomic hydrogen first occurred during the recombination epoch. At standard temperature and pressure, hydrogen is a colorless, odorless, tasteless, non-toxic, nonmetallic, highly combustible diatomic gas with the molecular formula H2. Since hydrogen readily forms covalent compounds with most n...
{ "tokens": [ "The", "universal", "emergence", "of", "atomic", "hydrogen", "first", "occurred", "during", "the", "recombination", "epoch", ".", "At", "standard", "temperature", "and", "pressure", ",", "hydrogen", "is", "a", "c...
e25a08c6750844118e7ab22603cb812d
What field of study has hydrogen and it's properties played a key role in development?
{ "tokens": [ "What", "field", "of", "study", "has", "hydrogen", "and", "it", "'s", "properties", "played", "a", "key", "role", "in", "development", "?" ], "offsets": [ 0, 5, 11, 14, 20, 24, 33, 37, 39, 42,...
{ "text": [ "quantum mechanics" ], "char_spans": [ { "start": [ 1159 ], "end": [ 1175 ] } ], "token_spans": [ { "start": [ 213 ], "end": [ 214 ] } ] }
[ "quantum mechanics" ]
SQuAD
One of the first quantum effects to be explicitly noticed (but not understood at the time) was a Maxwell observation involving hydrogen, half a century before full quantum mechanical theory arrived. Maxwell observed that the specific heat capacity of H2 unaccountably departs from that of a diatomic gas below room tempe...
{ "tokens": [ "One", "of", "the", "first", "quantum", "effects", "to", "be", "explicitly", "noticed", "(", "but", "not", "understood", "at", "the", "time", ")", "was", "a", "Maxwell", "observation", "involving", "hydrogen"...
f0c3ee2f656e40759a9401d1cad13d10
Who observed the specific heat capacity of H2?
{ "tokens": [ "Who", "observed", "the", "specific", "heat", "capacity", "of", "H2", "?" ], "offsets": [ 0, 4, 13, 17, 26, 31, 40, 43, 45 ] }
{ "text": [ "Maxwell" ], "char_spans": [ { "start": [ 97 ], "end": [ 103 ] } ], "token_spans": [ { "start": [ 20 ], "end": [ 20 ] } ] }
[ "Maxwell" ]
SQuAD
One of the first quantum effects to be explicitly noticed (but not understood at the time) was a Maxwell observation involving hydrogen, half a century before full quantum mechanical theory arrived. Maxwell observed that the specific heat capacity of H2 unaccountably departs from that of a diatomic gas below room tempe...
{ "tokens": [ "One", "of", "the", "first", "quantum", "effects", "to", "be", "explicitly", "noticed", "(", "but", "not", "understood", "at", "the", "time", ")", "was", "a", "Maxwell", "observation", "involving", "hydrogen"...
9cc5ea2bb7894de2aee03ba9ff6ad2c7
What cause H2 to resemble monatomic gas?
{ "tokens": [ "What", "cause", "H2", "to", "resemble", "monatomic", "gas", "?" ], "offsets": [ 0, 5, 11, 14, 17, 26, 36, 39 ] }
{ "text": [ "spacing of the (quantized) rotational energy levels" ], "char_spans": [ { "start": [ 473 ], "end": [ 523 ] } ], "token_spans": [ { "start": [ 79 ], "end": [ 87 ] } ] }
[ "spacing of the (quantized) rotational energy levels" ]
SQuAD
One of the first quantum effects to be explicitly noticed (but not understood at the time) was a Maxwell observation involving hydrogen, half a century before full quantum mechanical theory arrived. Maxwell observed that the specific heat capacity of H2 unaccountably departs from that of a diatomic gas below room tempe...
{ "tokens": [ "One", "of", "the", "first", "quantum", "effects", "to", "be", "explicitly", "noticed", "(", "but", "not", "understood", "at", "the", "time", ")", "was", "a", "Maxwell", "observation", "involving", "hydrogen"...
dc307c939962489792d88e1fefcd6281
What theory supports this?
{ "tokens": [ "What", "theory", "supports", "this", "?" ], "offsets": [ 0, 5, 12, 21, 25 ] }
{ "text": [ "quantum theory" ], "char_spans": [ { "start": [ 427 ], "end": [ 440 ] } ], "token_spans": [ { "start": [ 71 ], "end": [ 72 ] } ] }
[ "quantum theory" ]
SQuAD
The first hydrogen-filled balloon was invented by Jacques Charles in 1783. Hydrogen provided the lift for the first reliable form of air-travel following the 1852 invention of the first hydrogen-lifted airship by Henri Giffard. German count Ferdinand von Zeppelin promoted the idea of rigid airships lifted by hydrogen t...
{ "tokens": [ "The", "first", "hydrogen", "-", "filled", "balloon", "was", "invented", "by", "Jacques", "Charles", "in", "1783", ".", "Hydrogen", "provided", "the", "lift", "for", "the", "first", "reliable", "form", "of", ...
d17bea78e04e41f3bee0e27234d54c3f
Who invented the hydrogen filled balloons?
{ "tokens": [ "Who", "invented", "the", "hydrogen", "filled", "balloons", "?" ], "offsets": [ 0, 4, 13, 17, 26, 33, 41 ] }
{ "text": [ "Jacques Charles" ], "char_spans": [ { "start": [ 50 ], "end": [ 64 ] } ], "token_spans": [ { "start": [ 9 ], "end": [ 10 ] } ] }
[ "Jacques Charles" ]
SQuAD
The first hydrogen-filled balloon was invented by Jacques Charles in 1783. Hydrogen provided the lift for the first reliable form of air-travel following the 1852 invention of the first hydrogen-lifted airship by Henri Giffard. German count Ferdinand von Zeppelin promoted the idea of rigid airships lifted by hydrogen t...
{ "tokens": [ "The", "first", "hydrogen", "-", "filled", "balloon", "was", "invented", "by", "Jacques", "Charles", "in", "1783", ".", "Hydrogen", "provided", "the", "lift", "for", "the", "first", "reliable", "form", "of", ...
3fc2162df5d042e7bef3b136718147e6
What year was hydrogen filled balloons invented?
{ "tokens": [ "What", "year", "was", "hydrogen", "filled", "balloons", "invented", "?" ], "offsets": [ 0, 5, 10, 14, 23, 30, 39, 47 ] }
{ "text": [ "1783" ], "char_spans": [ { "start": [ 69 ], "end": [ 72 ] } ], "token_spans": [ { "start": [ 12 ], "end": [ 12 ] } ] }
[ "1783" ]
SQuAD
The first hydrogen-filled balloon was invented by Jacques Charles in 1783. Hydrogen provided the lift for the first reliable form of air-travel following the 1852 invention of the first hydrogen-lifted airship by Henri Giffard. German count Ferdinand von Zeppelin promoted the idea of rigid airships lifted by hydrogen t...
{ "tokens": [ "The", "first", "hydrogen", "-", "filled", "balloon", "was", "invented", "by", "Jacques", "Charles", "in", "1783", ".", "Hydrogen", "provided", "the", "lift", "for", "the", "first", "reliable", "form", "of", ...
d32b81fb06374970b0560e803b39f309
what were the hydrogen lifted airships called?
{ "tokens": [ "what", "were", "the", "hydrogen", "lifted", "airships", "called", "?" ], "offsets": [ 0, 5, 10, 14, 23, 30, 39, 45 ] }
{ "text": [ "Zeppelins" ], "char_spans": [ { "start": [ 342 ], "end": [ 350 ] } ], "token_spans": [ { "start": [ 60 ], "end": [ 60 ] } ] }
[ "Zeppelins" ]
SQuAD
The first hydrogen-filled balloon was invented by Jacques Charles in 1783. Hydrogen provided the lift for the first reliable form of air-travel following the 1852 invention of the first hydrogen-lifted airship by Henri Giffard. German count Ferdinand von Zeppelin promoted the idea of rigid airships lifted by hydrogen t...
{ "tokens": [ "The", "first", "hydrogen", "-", "filled", "balloon", "was", "invented", "by", "Jacques", "Charles", "in", "1783", ".", "Hydrogen", "provided", "the", "lift", "for", "the", "first", "reliable", "form", "of", ...
15ad964f4b7245eb8fedcdf8b0c1ec18
In what year did the first zeppelin make flight?
{ "tokens": [ "In", "what", "year", "did", "the", "first", "zeppelin", "make", "flight", "?" ], "offsets": [ 0, 3, 8, 13, 17, 21, 27, 36, 41, 47 ] }
{ "text": [ "1900" ], "char_spans": [ { "start": [ 397 ], "end": [ 400 ] } ], "token_spans": [ { "start": [ 71 ], "end": [ 71 ] } ] }
[ "1900" ]
SQuAD
There exist two different spin isomers of hydrogen diatomic molecules that differ by the relative spin of their nuclei. In the orthohydrogen form, the spins of the two protons are parallel and form a triplet state with a molecular spin quantum number of 1 (1⁄2+1⁄2); in the parahydrogen form the spins are antiparallel a...
{ "tokens": [ "There", "exist", "two", "different", "spin", "isomers", "of", "hydrogen", "diatomic", "molecules", "that", "differ", "by", "the", "relative", "spin", "of", "their", "nuclei", ".", "In", "the", "orthohydrogen", ...
234be195d22f4c6694b54b91d5bfc54f
What state are the protons in when in the orthohydrogen form?
{ "tokens": [ "What", "state", "are", "the", "protons", "in", "when", "in", "the", "orthohydrogen", "form", "?" ], "offsets": [ 0, 5, 11, 15, 19, 27, 30, 35, 38, 42, 56, 60 ] }
{ "text": [ "triplet state" ], "char_spans": [ { "start": [ 200 ], "end": [ 212 ] } ], "token_spans": [ { "start": [ 36 ], "end": [ 37 ] } ] }
[ "triplet state" ]
SQuAD
There exist two different spin isomers of hydrogen diatomic molecules that differ by the relative spin of their nuclei. In the orthohydrogen form, the spins of the two protons are parallel and form a triplet state with a molecular spin quantum number of 1 (1⁄2+1⁄2); in the parahydrogen form the spins are antiparallel a...
{ "tokens": [ "There", "exist", "two", "different", "spin", "isomers", "of", "hydrogen", "diatomic", "molecules", "that", "differ", "by", "the", "relative", "spin", "of", "their", "nuclei", ".", "In", "the", "orthohydrogen", ...
2fc14da76d2842479d07c44a58c2ad23
When hydrogen gas is in standard temperature and pressure, what form is it considered in>
{ "tokens": [ "When", "hydrogen", "gas", "is", "in", "standard", "temperature", "and", "pressure", ",", "what", "form", "is", "it", "considered", "in", ">" ], "offsets": [ 0, 5, 14, 18, 21, 24, 33, 45, 49, ...
{ "text": [ "normal" ], "char_spans": [ { "start": [ 524 ], "end": [ 529 ] } ], "token_spans": [ { "start": [ 105 ], "end": [ 105 ] } ] }
[ "normal" ]
SQuAD
There exist two different spin isomers of hydrogen diatomic molecules that differ by the relative spin of their nuclei. In the orthohydrogen form, the spins of the two protons are parallel and form a triplet state with a molecular spin quantum number of 1 (1⁄2+1⁄2); in the parahydrogen form the spins are antiparallel a...
{ "tokens": [ "There", "exist", "two", "different", "spin", "isomers", "of", "hydrogen", "diatomic", "molecules", "that", "differ", "by", "the", "relative", "spin", "of", "their", "nuclei", ".", "In", "the", "orthohydrogen", ...
d0452e38b72147c7ae3e19e5272d72eb
What percent of para form does hydrogen gas contain?
{ "tokens": [ "What", "percent", "of", "para", "form", "does", "hydrogen", "gas", "contain", "?" ], "offsets": [ 0, 5, 13, 16, 21, 26, 31, 40, 44, 51 ] }
{ "text": [ "25%" ], "char_spans": [ { "start": [ 457 ], "end": [ 459 ] } ], "token_spans": [ { "start": [ 86 ], "end": [ 87 ] } ] }
[ "25%" ]
SQuAD
There exist two different spin isomers of hydrogen diatomic molecules that differ by the relative spin of their nuclei. In the orthohydrogen form, the spins of the two protons are parallel and form a triplet state with a molecular spin quantum number of 1 (1⁄2+1⁄2); in the parahydrogen form the spins are antiparallel a...
{ "tokens": [ "There", "exist", "two", "different", "spin", "isomers", "of", "hydrogen", "diatomic", "molecules", "that", "differ", "by", "the", "relative", "spin", "of", "their", "nuclei", ".", "In", "the", "orthohydrogen", ...
9696b61f7ef146ab849091bf96e95112
What percent of ortho form does hydrogen gas contain?
{ "tokens": [ "What", "percent", "of", "ortho", "form", "does", "hydrogen", "gas", "contain", "?" ], "offsets": [ 0, 5, 13, 16, 22, 27, 32, 41, 45, 52 ] }
{ "text": [ "75%" ], "char_spans": [ { "start": [ 482 ], "end": [ 484 ] } ], "token_spans": [ { "start": [ 93 ], "end": [ 94 ] } ] }
[ "75%" ]
SQuAD
Under ordinary conditions on Earth, elemental hydrogen exists as the diatomic gas, H2. However, hydrogen gas is very rare in the Earth's atmosphere (1 ppm by volume) because of its light weight, which enables it to escape from Earth's gravity more easily than heavier gases. However, hydrogen is the third most abundant ...
{ "tokens": [ "Under", "ordinary", "conditions", "on", "Earth", ",", "elemental", "hydrogen", "exists", "as", "the", "diatomic", "gas", ",", "H2", ".", "However", ",", "hydrogen", "gas", "is", "very", "rare", "in", "th...
977376bdb92943cab6c874edb01ee25c
How abundant is hydrogen on the earths surface?
{ "tokens": [ "How", "abundant", "is", "hydrogen", "on", "the", "earths", "surface", "?" ], "offsets": [ 0, 4, 13, 16, 25, 28, 32, 39, 46 ] }
{ "text": [ "third most abundant" ], "char_spans": [ { "start": [ 300 ], "end": [ 318 ] } ], "token_spans": [ { "start": [ 60 ], "end": [ 62 ] } ] }
[ "third most abundant" ]
SQuAD
Under ordinary conditions on Earth, elemental hydrogen exists as the diatomic gas, H2. However, hydrogen gas is very rare in the Earth's atmosphere (1 ppm by volume) because of its light weight, which enables it to escape from Earth's gravity more easily than heavier gases. However, hydrogen is the third most abundant ...
{ "tokens": [ "Under", "ordinary", "conditions", "on", "Earth", ",", "elemental", "hydrogen", "exists", "as", "the", "diatomic", "gas", ",", "H2", ".", "However", ",", "hydrogen", "gas", "is", "very", "rare", "in", "th...
532ef19c555a4e41a6285d691db3516b
what produces hydrogen gas?
{ "tokens": [ "what", "produces", "hydrogen", "gas", "?" ], "offsets": [ 0, 5, 14, 23, 26 ] }
{ "text": [ "bacteria and algae" ], "char_spans": [ { "start": [ 458 ], "end": [ 475 ] } ], "token_spans": [ { "start": [ 89 ], "end": [ 91 ] } ] }
[ "bacteria and algae" ]
SQuAD
Consequently, steam reforming typically employs an excess of H 2O. Additional hydrogen can be recovered from the steam by use of carbon monoxide through the water gas shift reaction, especially with an iron oxide catalyst. This reaction is also a common industrial source of carbon dioxide:
{ "tokens": [ "Consequently", ",", "steam", "reforming", "typically", "employs", "an", "excess", "of", "H", "2O.", "Additional", "hydrogen", "can", "be", "recovered", "from", "the", "steam", "by", "use", "of", "carbon", "m...
3c1041db65104113be438e5d35ecfeb5
How can it be recovered through steam?
{ "tokens": [ "How", "can", "it", "be", "recovered", "through", "steam", "?" ], "offsets": [ 0, 4, 8, 11, 14, 24, 32, 37 ] }
{ "text": [ "use of carbon monoxide through the water gas shift reaction" ], "char_spans": [ { "start": [ 122 ], "end": [ 180 ] } ], "token_spans": [ { "start": [ 20 ], "end": [ 29 ] } ] }
[ "use of carbon monoxide through the water gas shift reaction" ]
SQuAD
Hydrogen is sometimes produced and consumed in the same industrial process, without being separated. In the Haber process for the production of ammonia, hydrogen is generated from natural gas. Electrolysis of brine to yield chlorine also produces hydrogen as a co-product.
{ "tokens": [ "Hydrogen", "is", "sometimes", "produced", "and", "consumed", "in", "the", "same", "industrial", "process", ",", "without", "being", "separated", ".", "In", "the", "Haber", "process", "for", "the", "production", ...
c59336f1d9e14fe3b13bf1c1c89cd187
When hydrogen is generated from natural gas, what des it produce?
{ "tokens": [ "When", "hydrogen", "is", "generated", "from", "natural", "gas", ",", "what", "des", "it", "produce", "?" ], "offsets": [ 0, 5, 14, 17, 27, 32, 40, 43, 45, 50, 54, 57, 64 ] }
{ "text": [ "ammonia" ], "char_spans": [ { "start": [ 144 ], "end": [ 150 ] } ], "token_spans": [ { "start": [ 24 ], "end": [ 24 ] } ] }
[ "ammonia" ]
SQuAD
Hydrogen is sometimes produced and consumed in the same industrial process, without being separated. In the Haber process for the production of ammonia, hydrogen is generated from natural gas. Electrolysis of brine to yield chlorine also produces hydrogen as a co-product.
{ "tokens": [ "Hydrogen", "is", "sometimes", "produced", "and", "consumed", "in", "the", "same", "industrial", "process", ",", "without", "being", "separated", ".", "In", "the", "Haber", "process", "for", "the", "production", ...
ed8168cf3d6247388641c90d2a2a94dd
How is hydrogen produced as a co product?
{ "tokens": [ "How", "is", "hydrogen", "produced", "as", "a", "co", "product", "?" ], "offsets": [ 0, 4, 7, 16, 25, 28, 30, 33, 40 ] }
{ "text": [ "Electrolysis of brine to yield chlorine" ], "char_spans": [ { "start": [ 193 ], "end": [ 231 ] } ], "token_spans": [ { "start": [ 33 ], "end": [ 38 ] } ] }
[ "Electrolysis of brine to yield chlorine" ]
SQuAD
From all the fault gases formed in power transformers, hydrogen is the most common and is generated under most fault conditions; thus, formation of hydrogen is an early indication of serious problems in the transformer's life cycle.
{ "tokens": [ "From", "all", "the", "fault", "gases", "formed", "in", "power", "transformers", ",", "hydrogen", "is", "the", "most", "common", "and", "is", "generated", "under", "most", "fault", "conditions", ";", "thus", ...
0fa769cff58042528bb34e51813b2f54
What is the most common gas found in power tranformers?
{ "tokens": [ "What", "is", "the", "most", "common", "gas", "found", "in", "power", "tranformers", "?" ], "offsets": [ 0, 5, 8, 12, 17, 24, 28, 34, 37, 43, 54 ] }
{ "text": [ "hydrogen" ], "char_spans": [ { "start": [ 55 ], "end": [ 62 ] } ], "token_spans": [ { "start": [ 10 ], "end": [ 10 ] } ] }
[ "hydrogen" ]
SQuAD
All major web browsers allow the user to open multiple information resources at the same time, either in different browser windows or in different tabs of the same window. Major browsers also include pop-up blockers to prevent unwanted windows from "popping up" without the user's consent.
{ "tokens": [ "All", "major", "web", "browsers", "allow", "the", "user", "to", "open", "multiple", "information", "resources", "at", "the", "same", "time", ",", "either", "in", "different", "browser", "windows", "or", "in"...
6be0533aa83245d7b74c632e50315e0e
What does not allow windows to pop up without consent?
{ "tokens": [ "What", "does", "not", "allow", "windows", "to", "pop", "up", "without", "consent", "?" ], "offsets": [ 0, 5, 10, 14, 20, 28, 31, 35, 38, 46, 53 ] }
{ "text": [ "pop-up blockers" ], "char_spans": [ { "start": [ 200 ], "end": [ 214 ] } ], "token_spans": [ { "start": [ 35 ], "end": [ 38 ] } ] }
[ "pop-up blockers" ]
SQuAD
Lavoisier produced hydrogen for his experiments on mass conservation by reacting a flux of steam with metallic iron through an incandescent iron tube heated in a fire. Anaerobic oxidation of iron by the protons of water at high temperature can be schematically represented by the set of following reactions:
{ "tokens": [ "Lavoisier", "produced", "hydrogen", "for", "his", "experiments", "on", "mass", "conservation", "by", "reacting", "a", "flux", "of", "steam", "with", "metallic", "iron", "through", "an", "incandescent", "iron", "...
87a170ca9bf3466fa71c3f50a82af11a
How did Lavoisier produce hydrogen for his experiments?
{ "tokens": [ "How", "did", "Lavoisier", "produce", "hydrogen", "for", "his", "experiments", "?" ], "offsets": [ 0, 4, 8, 18, 26, 35, 39, 43, 54 ] }
{ "text": [ "reacting a flux of steam with metallic iron through an incandescent iron tube heated in a fire" ], "char_spans": [ { "start": [ 72 ], "end": [ 165 ] } ], "token_spans": [ { "start": [ 10 ], "end": [ 26 ...
[ "reacting a flux of steam with metallic iron through an incandescent iron tube heated in a fire" ]
SQuAD
There are more than 200 thermochemical cycles which can be used for water splitting, around a dozen of these cycles such as the iron oxide cycle, cerium(IV) oxide–cerium(III) oxide cycle, zinc zinc-oxide cycle, sulfur-iodine cycle, copper-chlorine cycle and hybrid sulfur cycle are under research and in testing phase to...
{ "tokens": [ "There", "are", "more", "than", "200", "thermochemical", "cycles", "which", "can", "be", "used", "for", "water", "splitting", ",", "around", "a", "dozen", "of", "these", "cycles", "such", "as", "the", "ir...
ec714b2123584a688151c0a380f9fbf7
What are the thermochemical cycyles in a testing phase for?
{ "tokens": [ "What", "are", "the", "thermochemical", "cycyles", "in", "a", "testing", "phase", "for", "?" ], "offsets": [ 0, 5, 9, 13, 28, 36, 39, 41, 49, 55, 58 ] }
{ "text": [ "produce hydrogen and oxygen from water and heat without using electricity" ], "char_spans": [ { "start": [ 321 ], "end": [ 393 ] } ], "token_spans": [ { "start": [ 64 ], "end": [ 74 ] } ] }
[ "produce hydrogen and oxygen from water and heat without using electricity" ]
SQuAD
There are more than 200 thermochemical cycles which can be used for water splitting, around a dozen of these cycles such as the iron oxide cycle, cerium(IV) oxide–cerium(III) oxide cycle, zinc zinc-oxide cycle, sulfur-iodine cycle, copper-chlorine cycle and hybrid sulfur cycle are under research and in testing phase to...
{ "tokens": [ "There", "are", "more", "than", "200", "thermochemical", "cycles", "which", "can", "be", "used", "for", "water", "splitting", ",", "around", "a", "dozen", "of", "these", "cycles", "such", "as", "the", "ir...
019f63c87dd04ab79cfd832743486c14
What are labs trying to produce hydrogen from?
{ "tokens": [ "What", "are", "labs", "trying", "to", "produce", "hydrogen", "from", "?" ], "offsets": [ 0, 5, 9, 14, 21, 24, 32, 41, 45 ] }
{ "text": [ "solar energy and water" ], "char_spans": [ { "start": [ 543 ], "end": [ 564 ] } ], "token_spans": [ { "start": [ 103 ], "end": [ 106 ] } ] }
[ "solar energy and water" ]
SQuAD
There are more than 200 thermochemical cycles which can be used for water splitting, around a dozen of these cycles such as the iron oxide cycle, cerium(IV) oxide–cerium(III) oxide cycle, zinc zinc-oxide cycle, sulfur-iodine cycle, copper-chlorine cycle and hybrid sulfur cycle are under research and in testing phase to...
{ "tokens": [ "There", "are", "more", "than", "200", "thermochemical", "cycles", "which", "can", "be", "used", "for", "water", "splitting", ",", "around", "a", "dozen", "of", "these", "cycles", "such", "as", "the", "ir...
34d3e423000c4c56be640bcdbd687041
What countries are testing this?
{ "tokens": [ "What", "countries", "are", "testing", "this", "?" ], "offsets": [ 0, 5, 15, 19, 27, 31 ] }
{ "text": [ "France, Germany, Greece, Japan, and the USA" ], "char_spans": [ { "start": [ 435 ], "end": [ 477 ] } ], "token_spans": [ { "start": [ 83 ], "end": [ 93 ] } ] }
[ "France, Germany, Greece, Japan, and the USA" ]
SQuAD
In its turn, under anaerobic conditions, the ferrous hydroxide (Fe(OH) 2 ) can be oxidized by the protons of water to form magnetite and molecular hydrogen. This process is described by the Schikorr reaction:
{ "tokens": [ "In", "its", "turn", ",", "under", "anaerobic", "conditions", ",", "the", "ferrous", "hydroxide", "(", "Fe(OH", ")", "2", ")", "can", "be", "oxidized", "by", "the", "protons", "of", "water", "to", "fo...
9ee6dbe390664965b24664495918f508
Under what condition can ferrous hydroxide be oxidized?
{ "tokens": [ "Under", "what", "condition", "can", "ferrous", "hydroxide", "be", "oxidized", "?" ], "offsets": [ 0, 6, 11, 21, 25, 33, 43, 46, 54 ] }
{ "text": [ "anaerobic" ], "char_spans": [ { "start": [ 19 ], "end": [ 27 ] } ], "token_spans": [ { "start": [ 5 ], "end": [ 5 ] } ] }
[ "anaerobic" ]
SQuAD
In its turn, under anaerobic conditions, the ferrous hydroxide (Fe(OH) 2 ) can be oxidized by the protons of water to form magnetite and molecular hydrogen. This process is described by the Schikorr reaction:
{ "tokens": [ "In", "its", "turn", ",", "under", "anaerobic", "conditions", ",", "the", "ferrous", "hydroxide", "(", "Fe(OH", ")", "2", ")", "can", "be", "oxidized", "by", "the", "protons", "of", "water", "to", "fo...
f2d359d923c44e3bb23a4449deb1585d
What does this process form?
{ "tokens": [ "What", "does", "this", "process", "form", "?" ], "offsets": [ 0, 5, 10, 15, 23, 27 ] }
{ "text": [ "magnetite and molecular hydrogen" ], "char_spans": [ { "start": [ 123 ], "end": [ 154 ] } ], "token_spans": [ { "start": [ 26 ], "end": [ 29 ] } ] }
[ "magnetite and molecular hydrogen" ]
SQuAD
In its turn, under anaerobic conditions, the ferrous hydroxide (Fe(OH) 2 ) can be oxidized by the protons of water to form magnetite and molecular hydrogen. This process is described by the Schikorr reaction:
{ "tokens": [ "In", "its", "turn", ",", "under", "anaerobic", "conditions", ",", "the", "ferrous", "hydroxide", "(", "Fe(OH", ")", "2", ")", "can", "be", "oxidized", "by", "the", "protons", "of", "water", "to", "fo...
e048a65d257547d6a2eff43cdb60d9fc
What reaction describes this process?
{ "tokens": [ "What", "reaction", "describes", "this", "process", "?" ], "offsets": [ 0, 5, 14, 24, 29, 36 ] }
{ "text": [ "Schikorr reaction" ], "char_spans": [ { "start": [ 190 ], "end": [ 206 ] } ], "token_spans": [ { "start": [ 37 ], "end": [ 38 ] } ] }
[ "Schikorr reaction" ]
SQuAD
An alloy of aluminium and gallium in pellet form added to water can be used to generate hydrogen. The process also produces alumina, but the expensive gallium, which prevents the formation of an oxide skin on the pellets, can be re-used. This has important potential implications for a hydrogen economy, as hydrogen can ...
{ "tokens": [ "An", "alloy", "of", "aluminium", "and", "gallium", "in", "pellet", "form", "added", "to", "water", "can", "be", "used", "to", "generate", "hydrogen", ".", "The", "process", "also", "produces", "alumina", ...
83feac58b4414b4f8e6a4f81efbc576c
When you combine an alloy of alluminum and gallium to water, what do you get?
{ "tokens": [ "When", "you", "combine", "an", "alloy", "of", "alluminum", "and", "gallium", "to", "water", ",", "what", "do", "you", "get", "?" ], "offsets": [ 0, 5, 9, 17, 20, 26, 29, 39, 43, 51, 54, ...
{ "text": [ "hydrogen" ], "char_spans": [ { "start": [ 88 ], "end": [ 95 ] } ], "token_spans": [ { "start": [ 17 ], "end": [ 17 ] } ] }
[ "hydrogen" ]
SQuAD
An alloy of aluminium and gallium in pellet form added to water can be used to generate hydrogen. The process also produces alumina, but the expensive gallium, which prevents the formation of an oxide skin on the pellets, can be re-used. This has important potential implications for a hydrogen economy, as hydrogen can ...
{ "tokens": [ "An", "alloy", "of", "aluminium", "and", "gallium", "in", "pellet", "form", "added", "to", "water", "can", "be", "used", "to", "generate", "hydrogen", ".", "The", "process", "also", "produces", "alumina", ...
99f0e8252b8449d8948a0b4914b2dc3f
What else can it produce?
{ "tokens": [ "What", "else", "can", "it", "produce", "?" ], "offsets": [ 0, 5, 10, 14, 17, 24 ] }
{ "text": [ "alumina" ], "char_spans": [ { "start": [ 124 ], "end": [ 130 ] } ], "token_spans": [ { "start": [ 23 ], "end": [ 23 ] } ] }
[ "alumina" ]
SQuAD
An alloy of aluminium and gallium in pellet form added to water can be used to generate hydrogen. The process also produces alumina, but the expensive gallium, which prevents the formation of an oxide skin on the pellets, can be re-used. This has important potential implications for a hydrogen economy, as hydrogen can ...
{ "tokens": [ "An", "alloy", "of", "aluminium", "and", "gallium", "in", "pellet", "form", "added", "to", "water", "can", "be", "used", "to", "generate", "hydrogen", ".", "The", "process", "also", "produces", "alumina", ...
762d60cc2d5f4639b448e1d993e84331
What can be reused after the formation?
{ "tokens": [ "What", "can", "be", "reused", "after", "the", "formation", "?" ], "offsets": [ 0, 5, 9, 12, 19, 25, 29, 38 ] }
{ "text": [ "the expensive gallium" ], "char_spans": [ { "start": [ 137 ], "end": [ 157 ] } ], "token_spans": [ { "start": [ 26 ], "end": [ 28 ] } ] }
[ "the expensive gallium" ]
SQuAD
Hydrogen can be prepared in several different ways, but economically the most important processes involve removal of hydrogen from hydrocarbons. Commercial bulk hydrogen is usually produced by the steam reforming of natural gas. At high temperatures (1000–1400 K, 700–1100 °C or 1300–2000 °F), steam (water vapor) reacts...
{ "tokens": [ "Hydrogen", "can", "be", "prepared", "in", "several", "different", "ways", ",", "but", "economically", "the", "most", "important", "processes", "involve", "removal", "of", "hydrogen", "from", "hydrocarbons", ".", ...
24b4218f0a364fe393e4d91657465718
The most economical way to prepare hydrogen involves removing it from what?
{ "tokens": [ "The", "most", "economical", "way", "to", "prepare", "hydrogen", "involves", "removing", "it", "from", "what", "?" ], "offsets": [ 0, 4, 9, 20, 24, 27, 35, 44, 53, 62, 65, 70, 74 ] }
{ "text": [ "hydrocarbons" ], "char_spans": [ { "start": [ 131 ], "end": [ 142 ] } ], "token_spans": [ { "start": [ 20 ], "end": [ 20 ] } ] }
[ "hydrocarbons" ]
SQuAD
Hydrogen can be prepared in several different ways, but economically the most important processes involve removal of hydrogen from hydrocarbons. Commercial bulk hydrogen is usually produced by the steam reforming of natural gas. At high temperatures (1000–1400 K, 700–1100 °C or 1300–2000 °F), steam (water vapor) reacts...
{ "tokens": [ "Hydrogen", "can", "be", "prepared", "in", "several", "different", "ways", ",", "but", "economically", "the", "most", "important", "processes", "involve", "removal", "of", "hydrogen", "from", "hydrocarbons", ".", ...
332f4cdf84cf4d0282ff956d8841744b
What temperature is needed for steam to react with methane?
{ "tokens": [ "What", "temperature", "is", "needed", "for", "steam", "to", "react", "with", "methane", "?" ], "offsets": [ 0, 5, 17, 20, 27, 31, 37, 40, 46, 51, 58 ] }
{ "text": [ "1000–1400 K, 700–1100 °C or 1300–2000 °F" ], "char_spans": [ { "start": [ 251 ], "end": [ 290 ] } ], "token_spans": [ { "start": [ 40 ], "end": [ 49 ] } ] }
[ "1000–1400 K, 700–1100 °C or 1300–2000 °F" ]
SQuAD
Under anaerobic conditions, iron and steel alloys are slowly oxidized by the protons of water concomitantly reduced in molecular hydrogen (H 2). The anaerobic corrosion of iron leads first to the formation of ferrous hydroxide (green rust) and can be described by the following reaction:
{ "tokens": [ "Under", "anaerobic", "conditions", ",", "iron", "and", "steel", "alloys", "are", "slowly", "oxidized", "by", "the", "protons", "of", "water", "concomitantly", "reduced", "in", "molecular", "hydrogen", "(", "H", ...
66a4a0a1a6c64950ba521bb79413a03e
What condition is iron and steel alloys slowly oxidized?
{ "tokens": [ "What", "condition", "is", "iron", "and", "steel", "alloys", "slowly", "oxidized", "?" ], "offsets": [ 0, 5, 15, 18, 23, 27, 33, 40, 47, 55 ] }
{ "text": [ "anaerobic" ], "char_spans": [ { "start": [ 6 ], "end": [ 14 ] } ], "token_spans": [ { "start": [ 1 ], "end": [ 1 ] } ] }
[ "anaerobic" ]
SQuAD
Under anaerobic conditions, iron and steel alloys are slowly oxidized by the protons of water concomitantly reduced in molecular hydrogen (H 2). The anaerobic corrosion of iron leads first to the formation of ferrous hydroxide (green rust) and can be described by the following reaction:
{ "tokens": [ "Under", "anaerobic", "conditions", ",", "iron", "and", "steel", "alloys", "are", "slowly", "oxidized", "by", "the", "protons", "of", "water", "concomitantly", "reduced", "in", "molecular", "hydrogen", "(", "H", ...
814f33d6a1d741f58b60dcf9b0714679
What does the anaerobic corrosion of iron lead to?
{ "tokens": [ "What", "does", "the", "anaerobic", "corrosion", "of", "iron", "lead", "to", "?" ], "offsets": [ 0, 5, 10, 14, 24, 34, 37, 42, 47, 49 ] }
{ "text": [ "formation of ferrous hydroxide" ], "char_spans": [ { "start": [ 196 ], "end": [ 225 ] } ], "token_spans": [ { "start": [ 35 ], "end": [ 38 ] } ] }
[ "formation of ferrous hydroxide" ]
SQuAD
Under anaerobic conditions, iron and steel alloys are slowly oxidized by the protons of water concomitantly reduced in molecular hydrogen (H 2). The anaerobic corrosion of iron leads first to the formation of ferrous hydroxide (green rust) and can be described by the following reaction:
{ "tokens": [ "Under", "anaerobic", "conditions", ",", "iron", "and", "steel", "alloys", "are", "slowly", "oxidized", "by", "the", "protons", "of", "water", "concomitantly", "reduced", "in", "molecular", "hydrogen", "(", "H", ...
dfa116adecdf44ffa95e250d4824feee
What is another name for formation of ferrous hydroxide?
{ "tokens": [ "What", "is", "another", "name", "for", "formation", "of", "ferrous", "hydroxide", "?" ], "offsets": [ 0, 5, 8, 16, 21, 25, 35, 38, 46, 55 ] }
{ "text": [ "green rust" ], "char_spans": [ { "start": [ 228 ], "end": [ 237 ] } ], "token_spans": [ { "start": [ 40 ], "end": [ 41 ] } ] }
[ "green rust" ]
SQuAD
This reaction is favored at low pressures but is nonetheless conducted at high pressures (2.0 MPa, 20 atm or 600 inHg). This is because high-pressure H 2 is the most marketable product and Pressure Swing Adsorption (PSA) purification systems work better at higher pressures. The product mixture is known as "synthesis g...
{ "tokens": [ "This", "reaction", "is", "favored", "at", "low", "pressures", "but", "is", "nonetheless", "conducted", "at", "high", "pressures", "(", "2.0", "MPa", ",", "20", "atm", "or", "600", "inHg", ")", ".", "...
b3ab803b5cc047b784150762387e4261
At what pressure does PSA work best in?
{ "tokens": [ "At", "what", "pressure", "does", "PSA", "work", "best", "in", "?" ], "offsets": [ 0, 3, 8, 17, 22, 26, 31, 36, 38 ] }
{ "text": [ "high pressures" ], "char_spans": [ { "start": [ 74 ], "end": [ 87 ] } ], "token_spans": [ { "start": [ 12 ], "end": [ 13 ] } ] }
[ "high pressures" ]
SQuAD
This reaction is favored at low pressures but is nonetheless conducted at high pressures (2.0 MPa, 20 atm or 600 inHg). This is because high-pressure H 2 is the most marketable product and Pressure Swing Adsorption (PSA) purification systems work better at higher pressures. The product mixture is known as "synthesis g...
{ "tokens": [ "This", "reaction", "is", "favored", "at", "low", "pressures", "but", "is", "nonetheless", "conducted", "at", "high", "pressures", "(", "2.0", "MPa", ",", "20", "atm", "or", "600", "inHg", ")", ".", "...
eddf725b2fee42d1944bb277e53038fb
What is synthesis gas used for?
{ "tokens": [ "What", "is", "synthesis", "gas", "used", "for", "?" ], "offsets": [ 0, 5, 8, 18, 22, 27, 30 ] }
{ "text": [ "production of methanol" ], "char_spans": [ { "start": [ 366 ], "end": [ 387 ] } ], "token_spans": [ { "start": [ 71 ], "end": [ 73 ] } ] }
[ "production of methanol" ]
SQuAD
This reaction is favored at low pressures but is nonetheless conducted at high pressures (2.0 MPa, 20 atm or 600 inHg). This is because high-pressure H 2 is the most marketable product and Pressure Swing Adsorption (PSA) purification systems work better at higher pressures. The product mixture is known as "synthesis g...
{ "tokens": [ "This", "reaction", "is", "favored", "at", "low", "pressures", "but", "is", "nonetheless", "conducted", "at", "high", "pressures", "(", "2.0", "MPa", ",", "20", "atm", "or", "600", "inHg", ")", ".", "...
39970ca13af848d890082a371aac3c45
Besides methane, what else can be used to produce synthesis gas?
{ "tokens": [ "Besides", "methane", ",", "what", "else", "can", "be", "used", "to", "produce", "synthesis", "gas", "?" ], "offsets": [ 0, 8, 15, 17, 22, 27, 31, 34, 39, 42, 50, 60, 63 ] }
{ "text": [ "Hydrocarbons" ], "char_spans": [ { "start": [ 412 ], "end": [ 423 ] } ], "token_spans": [ { "start": [ 78 ], "end": [ 78 ] } ] }
[ "Hydrocarbons" ]
SQuAD
In the absence of atmospheric oxygen (O 2), in deep geological conditions prevailing far away from Earth atmosphere, hydrogen (H 2) is produced during the process of serpentinization by the anaerobic oxidation by the water protons (H+) of the ferrous (Fe2+) silicate present in the crystal lattice of the fayalite (Fe 2S...
{ "tokens": [ "In", "the", "absence", "of", "atmospheric", "oxygen", "(", "O", "2", ")", ",", "in", "deep", "geological", "conditions", "prevailing", "far", "away", "from", "Earth", "atmosphere", ",", "hydrogen", "(", ...
07b8c9e22a45463c9f3c6f4a15867595
How is hydrogen produced when there is no atmospheric oxygen?
{ "tokens": [ "How", "is", "hydrogen", "produced", "when", "there", "is", "no", "atmospheric", "oxygen", "?" ], "offsets": [ 0, 4, 7, 16, 25, 30, 36, 39, 42, 54, 60 ] }
{ "text": [ "serpentinization by the anaerobic oxidation" ], "char_spans": [ { "start": [ 166 ], "end": [ 208 ] } ], "token_spans": [ { "start": [ 33 ], "end": [ 37 ] } ] }
[ "serpentinization by the anaerobic oxidation" ]
SQuAD
In the absence of atmospheric oxygen (O 2), in deep geological conditions prevailing far away from Earth atmosphere, hydrogen (H 2) is produced during the process of serpentinization by the anaerobic oxidation by the water protons (H+) of the ferrous (Fe2+) silicate present in the crystal lattice of the fayalite (Fe 2S...
{ "tokens": [ "In", "the", "absence", "of", "atmospheric", "oxygen", "(", "O", "2", ")", ",", "in", "deep", "geological", "conditions", "prevailing", "far", "away", "from", "Earth", "atmosphere", ",", "hydrogen", "(", ...
bca3d49ef6a84ff590f3853dd2723fe6
Where do you find silicate?
{ "tokens": [ "Where", "do", "you", "find", "silicate", "?" ], "offsets": [ 0, 6, 9, 13, 18, 26 ] }
{ "text": [ "crystal lattice of the fayalite" ], "char_spans": [ { "start": [ 282 ], "end": [ 312 ] } ], "token_spans": [ { "start": [ 56 ], "end": [ 60 ] } ] }
[ "crystal lattice of the fayalite" ]
SQuAD
Throughout the universe, hydrogen is mostly found in the atomic and plasma states whose properties are quite different from molecular hydrogen. As a plasma, hydrogen's electron and proton are not bound together, resulting in very high electrical conductivity and high emissivity (producing the light from the Sun and oth...
{ "tokens": [ "Throughout", "the", "universe", ",", "hydrogen", "is", "mostly", "found", "in", "the", "atomic", "and", "plasma", "states", "whose", "properties", "are", "quite", "different", "from", "molecular", "hydrogen", "....
5990ae86304b4eb5ad455c308032c005
In what states is hydrogen mostly found in the universe?
{ "tokens": [ "In", "what", "states", "is", "hydrogen", "mostly", "found", "in", "the", "universe", "?" ], "offsets": [ 0, 3, 8, 15, 18, 27, 34, 40, 43, 47, 55 ] }
{ "text": [ "atomic and plasma" ], "char_spans": [ { "start": [ 57 ], "end": [ 73 ] } ], "token_spans": [ { "start": [ 10 ], "end": [ 12 ] } ] }
[ "atomic and plasma" ]
SQuAD
Throughout the universe, hydrogen is mostly found in the atomic and plasma states whose properties are quite different from molecular hydrogen. As a plasma, hydrogen's electron and proton are not bound together, resulting in very high electrical conductivity and high emissivity (producing the light from the Sun and oth...
{ "tokens": [ "Throughout", "the", "universe", ",", "hydrogen", "is", "mostly", "found", "in", "the", "atomic", "and", "plasma", "states", "whose", "properties", "are", "quite", "different", "from", "molecular", "hydrogen", "....
116e20f9d25a4a668f69c6e453d5d8ab
Hydrogens electron and proton are not bound together in what state?
{ "tokens": [ "Hydrogens", "electron", "and", "proton", "are", "not", "bound", "together", "in", "what", "state", "?" ], "offsets": [ 0, 10, 19, 23, 30, 34, 38, 44, 53, 56, 61, 66 ] }
{ "text": [ "plasma" ], "char_spans": [ { "start": [ 68 ], "end": [ 73 ] } ], "token_spans": [ { "start": [ 12 ], "end": [ 12 ] } ] }
[ "plasma" ]
SQuAD
Throughout the universe, hydrogen is mostly found in the atomic and plasma states whose properties are quite different from molecular hydrogen. As a plasma, hydrogen's electron and proton are not bound together, resulting in very high electrical conductivity and high emissivity (producing the light from the Sun and oth...
{ "tokens": [ "Throughout", "the", "universe", ",", "hydrogen", "is", "mostly", "found", "in", "the", "atomic", "and", "plasma", "states", "whose", "properties", "are", "quite", "different", "from", "molecular", "hydrogen", "....
2c804448539c4771905f9ae70a61d939
in the interstellar medium, what state is hydrogen in?
{ "tokens": [ "in", "the", "interstellar", "medium", ",", "what", "state", "is", "hydrogen", "in", "?" ], "offsets": [ 0, 3, 7, 20, 26, 28, 33, 39, 42, 51, 53 ] }
{ "text": [ "neutral atomic state" ], "char_spans": [ { "start": [ 559 ], "end": [ 578 ] } ], "token_spans": [ { "start": [ 98 ], "end": [ 100 ] } ] }
[ "neutral atomic state" ]
SQuAD
Throughout the universe, hydrogen is mostly found in the atomic and plasma states whose properties are quite different from molecular hydrogen. As a plasma, hydrogen's electron and proton are not bound together, resulting in very high electrical conductivity and high emissivity (producing the light from the Sun and oth...
{ "tokens": [ "Throughout", "the", "universe", ",", "hydrogen", "is", "mostly", "found", "in", "the", "atomic", "and", "plasma", "states", "whose", "properties", "are", "quite", "different", "from", "molecular", "hydrogen", "....
facef035204f4ee18211f8710c762db4
The neutral hydrogen found in the damped Lyman-alpha systems dominates what?
{ "tokens": [ "The", "neutral", "hydrogen", "found", "in", "the", "damped", "Lyman", "-", "alpha", "systems", "dominates", "what", "?" ], "offsets": [ 0, 4, 12, 21, 27, 30, 34, 41, 46, 47, 53, 61, 71, 7...
{ "text": [ "cosmological baryonic density of the Universe" ], "char_spans": [ { "start": [ 712 ], "end": [ 756 ] } ], "token_spans": [ { "start": [ 125 ], "end": [ 130 ] } ] }
[ "cosmological baryonic density of the Universe" ]
SQuAD
The electrolysis of water is a simple method of producing hydrogen. A low voltage current is run through the water, and gaseous oxygen forms at the anode while gaseous hydrogen forms at the cathode. Typically the cathode is made from platinum or another inert metal when producing hydrogen for storage. If, however, the ...
{ "tokens": [ "The", "electrolysis", "of", "water", "is", "a", "simple", "method", "of", "producing", "hydrogen", ".", "A", "low", "voltage", "current", "is", "run", "through", "the", "water", ",", "and", "gaseous", "o...
6153a353b30441e393edea080eaa0a42
What is an easy way to produce hydrogen?
{ "tokens": [ "What", "is", "an", "easy", "way", "to", "produce", "hydrogen", "?" ], "offsets": [ 0, 5, 8, 11, 16, 20, 23, 31, 39 ] }
{ "text": [ "electrolysis of water" ], "char_spans": [ { "start": [ 4 ], "end": [ 24 ] } ], "token_spans": [ { "start": [ 1 ], "end": [ 3 ] } ] }
[ "electrolysis of water" ]
SQuAD
The electrolysis of water is a simple method of producing hydrogen. A low voltage current is run through the water, and gaseous oxygen forms at the anode while gaseous hydrogen forms at the cathode. Typically the cathode is made from platinum or another inert metal when producing hydrogen for storage. If, however, the ...
{ "tokens": [ "The", "electrolysis", "of", "water", "is", "a", "simple", "method", "of", "producing", "hydrogen", ".", "A", "low", "voltage", "current", "is", "run", "through", "the", "water", ",", "and", "gaseous", "o...
a909928ccda242e3bb9056aba347a685
Where does the gaseous oxygen form at?
{ "tokens": [ "Where", "does", "the", "gaseous", "oxygen", "form", "at", "?" ], "offsets": [ 0, 6, 11, 15, 23, 30, 35, 37 ] }
{ "text": [ "anode" ], "char_spans": [ { "start": [ 148 ], "end": [ 152 ] } ], "token_spans": [ { "start": [ 28 ], "end": [ 28 ] } ] }
[ "anode" ]