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1,001 | chemistry | stoichiometry | mole_concept | 3 | worked_example | Moles of H2O from mass 45.03 g | The molar mass of H2O is 18.02 g/mol. A sample of mass 45.03 g therefore contains n = m / M = 45.03 / 18.02 = 2.499 mol. The mole is the SI unit for amount of substance and links macroscopic mass to number of entities via Avogadro's constant. | n = m / M | atomic masses; chemical formulas | Convert between mass and moles for a pure compound. |
1,002 | chemistry | stoichiometry | mole_concept | 3 | worked_example | Moles of NH3 from mass 86.23 g | The molar mass of NH3 is 17.03 g/mol. A sample of mass 86.23 g therefore contains n = m / M = 86.23 / 17.03 = 5.063 mol. The mole is the SI unit for amount of substance and links macroscopic mass to number of entities via Avogadro's constant. | n = m / M | atomic masses; chemical formulas | Convert between mass and moles for a pure compound. |
1,003 | chemistry | stoichiometry | mole_concept | 3 | worked_example | Moles of CO2 from mass 43.96 g | The molar mass of CO2 is 44.01 g/mol. A sample of mass 43.96 g therefore contains n = m / M = 43.96 / 44.01 = 0.999 mol. The mole is the SI unit for amount of substance and links macroscopic mass to number of entities via Avogadro's constant. | n = m / M | atomic masses; chemical formulas | Convert between mass and moles for a pure compound. |
1,004 | chemistry | stoichiometry | mole_concept | 3 | worked_example | Moles of CO2 from mass 77.59 g | The molar mass of CO2 is 44.01 g/mol. A sample of mass 77.59 g therefore contains n = m / M = 77.59 / 44.01 = 1.763 mol. The mole is the SI unit for amount of substance and links macroscopic mass to number of entities via Avogadro's constant. | n = m / M | atomic masses; chemical formulas | Convert between mass and moles for a pure compound. |
1,005 | chemistry | stoichiometry | mole_concept | 3 | worked_example | Moles of C6H12O6 from mass 21.07 g | The molar mass of C6H12O6 is 180.2 g/mol. A sample of mass 21.07 g therefore contains n = m / M = 21.07 / 180.2 = 0.1169 mol. The mole is the SI unit for amount of substance and links macroscopic mass to number of entities via Avogadro's constant. | n = m / M | atomic masses; chemical formulas | Convert between mass and moles for a pure compound. |
1,006 | chemistry | stoichiometry | mole_concept | 3 | worked_example | Moles of CuSO4 from mass 68.94 g | The molar mass of CuSO4 is 159.6 g/mol. A sample of mass 68.94 g therefore contains n = m / M = 68.94 / 159.6 = 0.432 mol. The mole is the SI unit for amount of substance and links macroscopic mass to number of entities via Avogadro's constant. | n = m / M | atomic masses; chemical formulas | Convert between mass and moles for a pure compound. |
1,007 | chemistry | stoichiometry | mole_concept | 3 | worked_example | Moles of CuSO4 from mass 63.31 g | The molar mass of CuSO4 is 159.6 g/mol. A sample of mass 63.31 g therefore contains n = m / M = 63.31 / 159.6 = 0.3967 mol. The mole is the SI unit for amount of substance and links macroscopic mass to number of entities via Avogadro's constant. | n = m / M | atomic masses; chemical formulas | Convert between mass and moles for a pure compound. |
1,008 | chemistry | stoichiometry | mole_concept | 3 | worked_example | Moles of NaCl from mass 61.65 g | The molar mass of NaCl is 58.44 g/mol. A sample of mass 61.65 g therefore contains n = m / M = 61.65 / 58.44 = 1.055 mol. The mole is the SI unit for amount of substance and links macroscopic mass to number of entities via Avogadro's constant. | n = m / M | atomic masses; chemical formulas | Convert between mass and moles for a pure compound. |
1,009 | chemistry | stoichiometry | mole_concept | 3 | worked_example | Moles of C6H12O6 from mass 81.37 g | The molar mass of C6H12O6 is 180.2 g/mol. A sample of mass 81.37 g therefore contains n = m / M = 81.37 / 180.2 = 0.4517 mol. The mole is the SI unit for amount of substance and links macroscopic mass to number of entities via Avogadro's constant. | n = m / M | atomic masses; chemical formulas | Convert between mass and moles for a pure compound. |
1,010 | chemistry | stoichiometry | mole_concept | 3 | worked_example | Moles of H2O from mass 57.05 g | The molar mass of H2O is 18.02 g/mol. A sample of mass 57.05 g therefore contains n = m / M = 57.05 / 18.02 = 3.167 mol. The mole is the SI unit for amount of substance and links macroscopic mass to number of entities via Avogadro's constant. | n = m / M | atomic masses; chemical formulas | Convert between mass and moles for a pure compound. |
1,011 | chemistry | stoichiometry | mole_concept | 3 | worked_example | Moles of Fe2O3 from mass 28.18 g | The molar mass of Fe2O3 is 159.7 g/mol. A sample of mass 28.18 g therefore contains n = m / M = 28.18 / 159.7 = 0.1765 mol. The mole is the SI unit for amount of substance and links macroscopic mass to number of entities via Avogadro's constant. | n = m / M | atomic masses; chemical formulas | Convert between mass and moles for a pure compound. |
1,012 | chemistry | stoichiometry | mole_concept | 3 | worked_example | Moles of Fe2O3 from mass 16.92 g | The molar mass of Fe2O3 is 159.7 g/mol. A sample of mass 16.92 g therefore contains n = m / M = 16.92 / 159.7 = 0.106 mol. The mole is the SI unit for amount of substance and links macroscopic mass to number of entities via Avogadro's constant. | n = m / M | atomic masses; chemical formulas | Convert between mass and moles for a pure compound. |
1,013 | chemistry | stoichiometry | mole_concept | 3 | worked_example | Moles of H2SO4 from mass 29 g | The molar mass of H2SO4 is 98.07 g/mol. A sample of mass 29 g therefore contains n = m / M = 29 / 98.07 = 0.2957 mol. The mole is the SI unit for amount of substance and links macroscopic mass to number of entities via Avogadro's constant. | n = m / M | atomic masses; chemical formulas | Convert between mass and moles for a pure compound. |
1,014 | chemistry | stoichiometry | mole_concept | 3 | worked_example | Moles of H2SO4 from mass 95.24 g | The molar mass of H2SO4 is 98.07 g/mol. A sample of mass 95.24 g therefore contains n = m / M = 95.24 / 98.07 = 0.9712 mol. The mole is the SI unit for amount of substance and links macroscopic mass to number of entities via Avogadro's constant. | n = m / M | atomic masses; chemical formulas | Convert between mass and moles for a pure compound. |
1,015 | chemistry | stoichiometry | mole_concept | 3 | worked_example | Moles of Fe2O3 from mass 98.55 g | The molar mass of Fe2O3 is 159.7 g/mol. A sample of mass 98.55 g therefore contains n = m / M = 98.55 / 159.7 = 0.6171 mol. The mole is the SI unit for amount of substance and links macroscopic mass to number of entities via Avogadro's constant. | n = m / M | atomic masses; chemical formulas | Convert between mass and moles for a pure compound. |
1,016 | chemistry | stoichiometry | mole_concept | 3 | worked_example | Moles of CO2 from mass 13.65 g | The molar mass of CO2 is 44.01 g/mol. A sample of mass 13.65 g therefore contains n = m / M = 13.65 / 44.01 = 0.3101 mol. The mole is the SI unit for amount of substance and links macroscopic mass to number of entities via Avogadro's constant. | n = m / M | atomic masses; chemical formulas | Convert between mass and moles for a pure compound. |
1,017 | chemistry | stoichiometry | mole_concept | 3 | worked_example | Moles of CH4 from mass 91.88 g | The molar mass of CH4 is 16.04 g/mol. A sample of mass 91.88 g therefore contains n = m / M = 91.88 / 16.04 = 5.727 mol. The mole is the SI unit for amount of substance and links macroscopic mass to number of entities via Avogadro's constant. | n = m / M | atomic masses; chemical formulas | Convert between mass and moles for a pure compound. |
1,018 | chemistry | stoichiometry | mole_concept | 3 | worked_example | Moles of H2SO4 from mass 86.72 g | The molar mass of H2SO4 is 98.07 g/mol. A sample of mass 86.72 g therefore contains n = m / M = 86.72 / 98.07 = 0.8842 mol. The mole is the SI unit for amount of substance and links macroscopic mass to number of entities via Avogadro's constant. | n = m / M | atomic masses; chemical formulas | Convert between mass and moles for a pure compound. |
1,019 | chemistry | stoichiometry | mole_concept | 3 | worked_example | Moles of NaCl from mass 70.17 g | The molar mass of NaCl is 58.44 g/mol. A sample of mass 70.17 g therefore contains n = m / M = 70.17 / 58.44 = 1.201 mol. The mole is the SI unit for amount of substance and links macroscopic mass to number of entities via Avogadro's constant. | n = m / M | atomic masses; chemical formulas | Convert between mass and moles for a pure compound. |
1,020 | chemistry | stoichiometry | mole_concept | 3 | worked_example | Moles of NaCl from mass 25.04 g | The molar mass of NaCl is 58.44 g/mol. A sample of mass 25.04 g therefore contains n = m / M = 25.04 / 58.44 = 0.4285 mol. The mole is the SI unit for amount of substance and links macroscopic mass to number of entities via Avogadro's constant. | n = m / M | atomic masses; chemical formulas | Convert between mass and moles for a pure compound. |
1,021 | chemistry | stoichiometry | mole_concept | 3 | worked_example | Moles of NH3 from mass 82.87 g | The molar mass of NH3 is 17.03 g/mol. A sample of mass 82.87 g therefore contains n = m / M = 82.87 / 17.03 = 4.866 mol. The mole is the SI unit for amount of substance and links macroscopic mass to number of entities via Avogadro's constant. | n = m / M | atomic masses; chemical formulas | Convert between mass and moles for a pure compound. |
1,022 | chemistry | stoichiometry | mole_concept | 3 | worked_example | Moles of CH4 from mass 49 g | The molar mass of CH4 is 16.04 g/mol. A sample of mass 49 g therefore contains n = m / M = 49 / 16.04 = 3.054 mol. The mole is the SI unit for amount of substance and links macroscopic mass to number of entities via Avogadro's constant. | n = m / M | atomic masses; chemical formulas | Convert between mass and moles for a pure compound. |
1,023 | chemistry | stoichiometry | mole_concept | 3 | worked_example | Moles of CuSO4 from mass 63.28 g | The molar mass of CuSO4 is 159.6 g/mol. A sample of mass 63.28 g therefore contains n = m / M = 63.28 / 159.6 = 0.3965 mol. The mole is the SI unit for amount of substance and links macroscopic mass to number of entities via Avogadro's constant. | n = m / M | atomic masses; chemical formulas | Convert between mass and moles for a pure compound. |
1,024 | chemistry | stoichiometry | mole_concept | 3 | worked_example | Moles of CH4 from mass 37.58 g | The molar mass of CH4 is 16.04 g/mol. A sample of mass 37.58 g therefore contains n = m / M = 37.58 / 16.04 = 2.342 mol. The mole is the SI unit for amount of substance and links macroscopic mass to number of entities via Avogadro's constant. | n = m / M | atomic masses; chemical formulas | Convert between mass and moles for a pure compound. |
1,025 | chemistry | stoichiometry | mole_concept | 3 | worked_example | Moles of CO2 from mass 63.4 g | The molar mass of CO2 is 44.01 g/mol. A sample of mass 63.4 g therefore contains n = m / M = 63.4 / 44.01 = 1.441 mol. The mole is the SI unit for amount of substance and links macroscopic mass to number of entities via Avogadro's constant. | n = m / M | atomic masses; chemical formulas | Convert between mass and moles for a pure compound. |
1,026 | chemistry | gases | ideal_gas_law | 4 | worked_example | Ideal-gas pressure for n=4.402 mol, V=26.02 L, T=237.2 K | For an ideal gas, P V = n R T. With n = 4.402 mol, V = 26.02 L, T = 237.2 K and R = 0.082057 L·atm·mol⁻¹·K⁻¹, the pressure is P = n R T / V = 3.293 atm. Real gases approach ideal behavior at low pressure and high temperature relative to their critical points. | P V = n R T | mole_concept | Apply the ideal-gas law to compute pressure, volume, or temperature. |
1,027 | chemistry | gases | ideal_gas_law | 4 | worked_example | Ideal-gas pressure for n=1.398 mol, V=18.77 L, T=574.5 K | For an ideal gas, P V = n R T. With n = 1.398 mol, V = 18.77 L, T = 574.5 K and R = 0.082057 L·atm·mol⁻¹·K⁻¹, the pressure is P = n R T / V = 3.512 atm. Real gases approach ideal behavior at low pressure and high temperature relative to their critical points. | P V = n R T | mole_concept | Apply the ideal-gas law to compute pressure, volume, or temperature. |
1,028 | chemistry | gases | ideal_gas_law | 4 | worked_example | Ideal-gas pressure for n=4.752 mol, V=0.6224 L, T=330.9 K | For an ideal gas, P V = n R T. With n = 4.752 mol, V = 0.6224 L, T = 330.9 K and R = 0.082057 L·atm·mol⁻¹·K⁻¹, the pressure is P = n R T / V = 207.3 atm. Real gases approach ideal behavior at low pressure and high temperature relative to their critical points. | P V = n R T | mole_concept | Apply the ideal-gas law to compute pressure, volume, or temperature. |
1,029 | chemistry | gases | ideal_gas_law | 4 | worked_example | Ideal-gas pressure for n=3.873 mol, V=36.68 L, T=493.1 K | For an ideal gas, P V = n R T. With n = 3.873 mol, V = 36.68 L, T = 493.1 K and R = 0.082057 L·atm·mol⁻¹·K⁻¹, the pressure is P = n R T / V = 4.272 atm. Real gases approach ideal behavior at low pressure and high temperature relative to their critical points. | P V = n R T | mole_concept | Apply the ideal-gas law to compute pressure, volume, or temperature. |
1,030 | chemistry | gases | ideal_gas_law | 4 | worked_example | Ideal-gas pressure for n=2.298 mol, V=18.23 L, T=465.7 K | For an ideal gas, P V = n R T. With n = 2.298 mol, V = 18.23 L, T = 465.7 K and R = 0.082057 L·atm·mol⁻¹·K⁻¹, the pressure is P = n R T / V = 4.815 atm. Real gases approach ideal behavior at low pressure and high temperature relative to their critical points. | P V = n R T | mole_concept | Apply the ideal-gas law to compute pressure, volume, or temperature. |
1,031 | chemistry | gases | ideal_gas_law | 4 | worked_example | Ideal-gas pressure for n=0.326 mol, V=11.28 L, T=413.8 K | For an ideal gas, P V = n R T. With n = 0.326 mol, V = 11.28 L, T = 413.8 K and R = 0.082057 L·atm·mol⁻¹·K⁻¹, the pressure is P = n R T / V = 0.9811 atm. Real gases approach ideal behavior at low pressure and high temperature relative to their critical points. | P V = n R T | mole_concept | Apply the ideal-gas law to compute pressure, volume, or temperature. |
1,032 | chemistry | gases | ideal_gas_law | 4 | worked_example | Ideal-gas pressure for n=2.154 mol, V=13.79 L, T=284.7 K | For an ideal gas, P V = n R T. With n = 2.154 mol, V = 13.79 L, T = 284.7 K and R = 0.082057 L·atm·mol⁻¹·K⁻¹, the pressure is P = n R T / V = 3.649 atm. Real gases approach ideal behavior at low pressure and high temperature relative to their critical points. | P V = n R T | mole_concept | Apply the ideal-gas law to compute pressure, volume, or temperature. |
1,033 | chemistry | gases | ideal_gas_law | 4 | worked_example | Ideal-gas pressure for n=4.143 mol, V=29.11 L, T=335.1 K | For an ideal gas, P V = n R T. With n = 4.143 mol, V = 29.11 L, T = 335.1 K and R = 0.082057 L·atm·mol⁻¹·K⁻¹, the pressure is P = n R T / V = 3.914 atm. Real gases approach ideal behavior at low pressure and high temperature relative to their critical points. | P V = n R T | mole_concept | Apply the ideal-gas law to compute pressure, volume, or temperature. |
1,034 | chemistry | gases | ideal_gas_law | 4 | worked_example | Ideal-gas pressure for n=2.835 mol, V=17.52 L, T=394.1 K | For an ideal gas, P V = n R T. With n = 2.835 mol, V = 17.52 L, T = 394.1 K and R = 0.082057 L·atm·mol⁻¹·K⁻¹, the pressure is P = n R T / V = 5.235 atm. Real gases approach ideal behavior at low pressure and high temperature relative to their critical points. | P V = n R T | mole_concept | Apply the ideal-gas law to compute pressure, volume, or temperature. |
1,035 | chemistry | gases | ideal_gas_law | 4 | worked_example | Ideal-gas pressure for n=3.416 mol, V=5.429 L, T=219.4 K | For an ideal gas, P V = n R T. With n = 3.416 mol, V = 5.429 L, T = 219.4 K and R = 0.082057 L·atm·mol⁻¹·K⁻¹, the pressure is P = n R T / V = 11.33 atm. Real gases approach ideal behavior at low pressure and high temperature relative to their critical points. | P V = n R T | mole_concept | Apply the ideal-gas law to compute pressure, volume, or temperature. |
1,036 | chemistry | gases | ideal_gas_law | 4 | worked_example | Ideal-gas pressure for n=3.922 mol, V=6.65 L, T=383.8 K | For an ideal gas, P V = n R T. With n = 3.922 mol, V = 6.65 L, T = 383.8 K and R = 0.082057 L·atm·mol⁻¹·K⁻¹, the pressure is P = n R T / V = 18.57 atm. Real gases approach ideal behavior at low pressure and high temperature relative to their critical points. | P V = n R T | mole_concept | Apply the ideal-gas law to compute pressure, volume, or temperature. |
1,037 | chemistry | gases | ideal_gas_law | 4 | worked_example | Ideal-gas pressure for n=4.29 mol, V=0.5335 L, T=376.5 K | For an ideal gas, P V = n R T. With n = 4.29 mol, V = 0.5335 L, T = 376.5 K and R = 0.082057 L·atm·mol⁻¹·K⁻¹, the pressure is P = n R T / V = 248.4 atm. Real gases approach ideal behavior at low pressure and high temperature relative to their critical points. | P V = n R T | mole_concept | Apply the ideal-gas law to compute pressure, volume, or temperature. |
1,038 | chemistry | gases | ideal_gas_law | 4 | worked_example | Ideal-gas pressure for n=4.791 mol, V=34.59 L, T=280.9 K | For an ideal gas, P V = n R T. With n = 4.791 mol, V = 34.59 L, T = 280.9 K and R = 0.082057 L·atm·mol⁻¹·K⁻¹, the pressure is P = n R T / V = 3.193 atm. Real gases approach ideal behavior at low pressure and high temperature relative to their critical points. | P V = n R T | mole_concept | Apply the ideal-gas law to compute pressure, volume, or temperature. |
1,039 | chemistry | gases | ideal_gas_law | 4 | worked_example | Ideal-gas pressure for n=0.6682 mol, V=8.369 L, T=460 K | For an ideal gas, P V = n R T. With n = 0.6682 mol, V = 8.369 L, T = 460 K and R = 0.082057 L·atm·mol⁻¹·K⁻¹, the pressure is P = n R T / V = 3.014 atm. Real gases approach ideal behavior at low pressure and high temperature relative to their critical points. | P V = n R T | mole_concept | Apply the ideal-gas law to compute pressure, volume, or temperature. |
1,040 | chemistry | gases | ideal_gas_law | 4 | worked_example | Ideal-gas pressure for n=4.664 mol, V=32.9 L, T=309.6 K | For an ideal gas, P V = n R T. With n = 4.664 mol, V = 32.9 L, T = 309.6 K and R = 0.082057 L·atm·mol⁻¹·K⁻¹, the pressure is P = n R T / V = 3.602 atm. Real gases approach ideal behavior at low pressure and high temperature relative to their critical points. | P V = n R T | mole_concept | Apply the ideal-gas law to compute pressure, volume, or temperature. |
1,041 | chemistry | gases | ideal_gas_law | 4 | worked_example | Ideal-gas pressure for n=1.259 mol, V=45.24 L, T=348.7 K | For an ideal gas, P V = n R T. With n = 1.259 mol, V = 45.24 L, T = 348.7 K and R = 0.082057 L·atm·mol⁻¹·K⁻¹, the pressure is P = n R T / V = 0.7967 atm. Real gases approach ideal behavior at low pressure and high temperature relative to their critical points. | P V = n R T | mole_concept | Apply the ideal-gas law to compute pressure, volume, or temperature. |
1,042 | chemistry | gases | ideal_gas_law | 4 | worked_example | Ideal-gas pressure for n=0.836 mol, V=15.62 L, T=358.5 K | For an ideal gas, P V = n R T. With n = 0.836 mol, V = 15.62 L, T = 358.5 K and R = 0.082057 L·atm·mol⁻¹·K⁻¹, the pressure is P = n R T / V = 1.574 atm. Real gases approach ideal behavior at low pressure and high temperature relative to their critical points. | P V = n R T | mole_concept | Apply the ideal-gas law to compute pressure, volume, or temperature. |
1,043 | chemistry | gases | ideal_gas_law | 4 | worked_example | Ideal-gas pressure for n=3.5 mol, V=32.95 L, T=293.7 K | For an ideal gas, P V = n R T. With n = 3.5 mol, V = 32.95 L, T = 293.7 K and R = 0.082057 L·atm·mol⁻¹·K⁻¹, the pressure is P = n R T / V = 2.56 atm. Real gases approach ideal behavior at low pressure and high temperature relative to their critical points. | P V = n R T | mole_concept | Apply the ideal-gas law to compute pressure, volume, or temperature. |
1,044 | chemistry | gases | ideal_gas_law | 4 | worked_example | Ideal-gas pressure for n=3.521 mol, V=24.1 L, T=200.4 K | For an ideal gas, P V = n R T. With n = 3.521 mol, V = 24.1 L, T = 200.4 K and R = 0.082057 L·atm·mol⁻¹·K⁻¹, the pressure is P = n R T / V = 2.403 atm. Real gases approach ideal behavior at low pressure and high temperature relative to their critical points. | P V = n R T | mole_concept | Apply the ideal-gas law to compute pressure, volume, or temperature. |
1,045 | chemistry | gases | ideal_gas_law | 4 | worked_example | Ideal-gas pressure for n=0.6722 mol, V=34.16 L, T=290.5 K | For an ideal gas, P V = n R T. With n = 0.6722 mol, V = 34.16 L, T = 290.5 K and R = 0.082057 L·atm·mol⁻¹·K⁻¹, the pressure is P = n R T / V = 0.469 atm. Real gases approach ideal behavior at low pressure and high temperature relative to their critical points. | P V = n R T | mole_concept | Apply the ideal-gas law to compute pressure, volume, or temperature. |
1,046 | chemistry | gases | ideal_gas_law | 4 | worked_example | Ideal-gas pressure for n=0.05634 mol, V=40.95 L, T=478.2 K | For an ideal gas, P V = n R T. With n = 0.05634 mol, V = 40.95 L, T = 478.2 K and R = 0.082057 L·atm·mol⁻¹·K⁻¹, the pressure is P = n R T / V = 0.054 atm. Real gases approach ideal behavior at low pressure and high temperature relative to their critical points. | P V = n R T | mole_concept | Apply the ideal-gas law to compute pressure, volume, or temperature. |
1,047 | chemistry | gases | ideal_gas_law | 4 | worked_example | Ideal-gas pressure for n=4.941 mol, V=7.043 L, T=368.9 K | For an ideal gas, P V = n R T. With n = 4.941 mol, V = 7.043 L, T = 368.9 K and R = 0.082057 L·atm·mol⁻¹·K⁻¹, the pressure is P = n R T / V = 21.24 atm. Real gases approach ideal behavior at low pressure and high temperature relative to their critical points. | P V = n R T | mole_concept | Apply the ideal-gas law to compute pressure, volume, or temperature. |
1,048 | chemistry | gases | ideal_gas_law | 4 | worked_example | Ideal-gas pressure for n=0.3634 mol, V=36.67 L, T=353.2 K | For an ideal gas, P V = n R T. With n = 0.3634 mol, V = 36.67 L, T = 353.2 K and R = 0.082057 L·atm·mol⁻¹·K⁻¹, the pressure is P = n R T / V = 0.2872 atm. Real gases approach ideal behavior at low pressure and high temperature relative to their critical points. | P V = n R T | mole_concept | Apply the ideal-gas law to compute pressure, volume, or temperature. |
1,049 | chemistry | gases | ideal_gas_law | 4 | worked_example | Ideal-gas pressure for n=0.5211 mol, V=44.11 L, T=325.3 K | For an ideal gas, P V = n R T. With n = 0.5211 mol, V = 44.11 L, T = 325.3 K and R = 0.082057 L·atm·mol⁻¹·K⁻¹, the pressure is P = n R T / V = 0.3154 atm. Real gases approach ideal behavior at low pressure and high temperature relative to their critical points. | P V = n R T | mole_concept | Apply the ideal-gas law to compute pressure, volume, or temperature. |
1,050 | chemistry | gases | ideal_gas_law | 4 | worked_example | Ideal-gas pressure for n=0.6943 mol, V=37.78 L, T=509.4 K | For an ideal gas, P V = n R T. With n = 0.6943 mol, V = 37.78 L, T = 509.4 K and R = 0.082057 L·atm·mol⁻¹·K⁻¹, the pressure is P = n R T / V = 0.7681 atm. Real gases approach ideal behavior at low pressure and high temperature relative to their critical points. | P V = n R T | mole_concept | Apply the ideal-gas law to compute pressure, volume, or temperature. |
1,051 | chemistry | gases | ideal_gas_law | 4 | worked_example | Ideal-gas pressure for n=0.6744 mol, V=7.571 L, T=597.2 K | For an ideal gas, P V = n R T. With n = 0.6744 mol, V = 7.571 L, T = 597.2 K and R = 0.082057 L·atm·mol⁻¹·K⁻¹, the pressure is P = n R T / V = 4.365 atm. Real gases approach ideal behavior at low pressure and high temperature relative to their critical points. | P V = n R T | mole_concept | Apply the ideal-gas law to compute pressure, volume, or temperature. |
1,052 | chemistry | gases | ideal_gas_law | 4 | worked_example | Ideal-gas pressure for n=2.657 mol, V=32.68 L, T=203.4 K | For an ideal gas, P V = n R T. With n = 2.657 mol, V = 32.68 L, T = 203.4 K and R = 0.082057 L·atm·mol⁻¹·K⁻¹, the pressure is P = n R T / V = 1.357 atm. Real gases approach ideal behavior at low pressure and high temperature relative to their critical points. | P V = n R T | mole_concept | Apply the ideal-gas law to compute pressure, volume, or temperature. |
1,053 | chemistry | gases | ideal_gas_law | 4 | worked_example | Ideal-gas pressure for n=2.206 mol, V=31.59 L, T=489 K | For an ideal gas, P V = n R T. With n = 2.206 mol, V = 31.59 L, T = 489 K and R = 0.082057 L·atm·mol⁻¹·K⁻¹, the pressure is P = n R T / V = 2.802 atm. Real gases approach ideal behavior at low pressure and high temperature relative to their critical points. | P V = n R T | mole_concept | Apply the ideal-gas law to compute pressure, volume, or temperature. |
1,054 | chemistry | gases | ideal_gas_law | 4 | worked_example | Ideal-gas pressure for n=0.7654 mol, V=34.49 L, T=364.7 K | For an ideal gas, P V = n R T. With n = 0.7654 mol, V = 34.49 L, T = 364.7 K and R = 0.082057 L·atm·mol⁻¹·K⁻¹, the pressure is P = n R T / V = 0.6642 atm. Real gases approach ideal behavior at low pressure and high temperature relative to their critical points. | P V = n R T | mole_concept | Apply the ideal-gas law to compute pressure, volume, or temperature. |
1,055 | chemistry | gases | ideal_gas_law | 4 | worked_example | Ideal-gas pressure for n=4.301 mol, V=5.473 L, T=234.7 K | For an ideal gas, P V = n R T. With n = 4.301 mol, V = 5.473 L, T = 234.7 K and R = 0.082057 L·atm·mol⁻¹·K⁻¹, the pressure is P = n R T / V = 15.13 atm. Real gases approach ideal behavior at low pressure and high temperature relative to their critical points. | P V = n R T | mole_concept | Apply the ideal-gas law to compute pressure, volume, or temperature. |
1,056 | chemistry | gases | ideal_gas_law | 4 | worked_example | Ideal-gas pressure for n=3.765 mol, V=19.51 L, T=435.8 K | For an ideal gas, P V = n R T. With n = 3.765 mol, V = 19.51 L, T = 435.8 K and R = 0.082057 L·atm·mol⁻¹·K⁻¹, the pressure is P = n R T / V = 6.901 atm. Real gases approach ideal behavior at low pressure and high temperature relative to their critical points. | P V = n R T | mole_concept | Apply the ideal-gas law to compute pressure, volume, or temperature. |
1,057 | chemistry | gases | ideal_gas_law | 4 | worked_example | Ideal-gas pressure for n=4.817 mol, V=7.422 L, T=325.8 K | For an ideal gas, P V = n R T. With n = 4.817 mol, V = 7.422 L, T = 325.8 K and R = 0.082057 L·atm·mol⁻¹·K⁻¹, the pressure is P = n R T / V = 17.35 atm. Real gases approach ideal behavior at low pressure and high temperature relative to their critical points. | P V = n R T | mole_concept | Apply the ideal-gas law to compute pressure, volume, or temperature. |
1,058 | chemistry | gases | ideal_gas_law | 4 | worked_example | Ideal-gas pressure for n=1.392 mol, V=27.89 L, T=233.7 K | For an ideal gas, P V = n R T. With n = 1.392 mol, V = 27.89 L, T = 233.7 K and R = 0.082057 L·atm·mol⁻¹·K⁻¹, the pressure is P = n R T / V = 0.9571 atm. Real gases approach ideal behavior at low pressure and high temperature relative to their critical points. | P V = n R T | mole_concept | Apply the ideal-gas law to compute pressure, volume, or temperature. |
1,059 | chemistry | gases | ideal_gas_law | 4 | worked_example | Ideal-gas pressure for n=3.004 mol, V=39.06 L, T=443 K | For an ideal gas, P V = n R T. With n = 3.004 mol, V = 39.06 L, T = 443 K and R = 0.082057 L·atm·mol⁻¹·K⁻¹, the pressure is P = n R T / V = 2.796 atm. Real gases approach ideal behavior at low pressure and high temperature relative to their critical points. | P V = n R T | mole_concept | Apply the ideal-gas law to compute pressure, volume, or temperature. |
1,060 | chemistry | gases | ideal_gas_law | 4 | worked_example | Ideal-gas pressure for n=3.455 mol, V=33.09 L, T=539.2 K | For an ideal gas, P V = n R T. With n = 3.455 mol, V = 33.09 L, T = 539.2 K and R = 0.082057 L·atm·mol⁻¹·K⁻¹, the pressure is P = n R T / V = 4.62 atm. Real gases approach ideal behavior at low pressure and high temperature relative to their critical points. | P V = n R T | mole_concept | Apply the ideal-gas law to compute pressure, volume, or temperature. |
1,061 | chemistry | gases | ideal_gas_law | 4 | worked_example | Ideal-gas pressure for n=1.515 mol, V=25.72 L, T=407.1 K | For an ideal gas, P V = n R T. With n = 1.515 mol, V = 25.72 L, T = 407.1 K and R = 0.082057 L·atm·mol⁻¹·K⁻¹, the pressure is P = n R T / V = 1.968 atm. Real gases approach ideal behavior at low pressure and high temperature relative to their critical points. | P V = n R T | mole_concept | Apply the ideal-gas law to compute pressure, volume, or temperature. |
1,062 | chemistry | gases | ideal_gas_law | 4 | worked_example | Ideal-gas pressure for n=3.742 mol, V=3.201 L, T=318.2 K | For an ideal gas, P V = n R T. With n = 3.742 mol, V = 3.201 L, T = 318.2 K and R = 0.082057 L·atm·mol⁻¹·K⁻¹, the pressure is P = n R T / V = 30.52 atm. Real gases approach ideal behavior at low pressure and high temperature relative to their critical points. | P V = n R T | mole_concept | Apply the ideal-gas law to compute pressure, volume, or temperature. |
1,063 | chemistry | gases | ideal_gas_law | 4 | worked_example | Ideal-gas pressure for n=4.491 mol, V=25 L, T=581.9 K | For an ideal gas, P V = n R T. With n = 4.491 mol, V = 25 L, T = 581.9 K and R = 0.082057 L·atm·mol⁻¹·K⁻¹, the pressure is P = n R T / V = 8.577 atm. Real gases approach ideal behavior at low pressure and high temperature relative to their critical points. | P V = n R T | mole_concept | Apply the ideal-gas law to compute pressure, volume, or temperature. |
1,064 | chemistry | gases | ideal_gas_law | 4 | worked_example | Ideal-gas pressure for n=0.5726 mol, V=29.9 L, T=399.8 K | For an ideal gas, P V = n R T. With n = 0.5726 mol, V = 29.9 L, T = 399.8 K and R = 0.082057 L·atm·mol⁻¹·K⁻¹, the pressure is P = n R T / V = 0.6283 atm. Real gases approach ideal behavior at low pressure and high temperature relative to their critical points. | P V = n R T | mole_concept | Apply the ideal-gas law to compute pressure, volume, or temperature. |
1,065 | chemistry | gases | ideal_gas_law | 4 | worked_example | Ideal-gas pressure for n=2.646 mol, V=49.35 L, T=591.1 K | For an ideal gas, P V = n R T. With n = 2.646 mol, V = 49.35 L, T = 591.1 K and R = 0.082057 L·atm·mol⁻¹·K⁻¹, the pressure is P = n R T / V = 2.601 atm. Real gases approach ideal behavior at low pressure and high temperature relative to their critical points. | P V = n R T | mole_concept | Apply the ideal-gas law to compute pressure, volume, or temperature. |
1,066 | chemistry | gases | ideal_gas_law | 4 | worked_example | Ideal-gas pressure for n=4.67 mol, V=43.11 L, T=252.8 K | For an ideal gas, P V = n R T. With n = 4.67 mol, V = 43.11 L, T = 252.8 K and R = 0.082057 L·atm·mol⁻¹·K⁻¹, the pressure is P = n R T / V = 2.247 atm. Real gases approach ideal behavior at low pressure and high temperature relative to their critical points. | P V = n R T | mole_concept | Apply the ideal-gas law to compute pressure, volume, or temperature. |
1,067 | chemistry | gases | ideal_gas_law | 4 | worked_example | Ideal-gas pressure for n=2.846 mol, V=34.31 L, T=346.2 K | For an ideal gas, P V = n R T. With n = 2.846 mol, V = 34.31 L, T = 346.2 K and R = 0.082057 L·atm·mol⁻¹·K⁻¹, the pressure is P = n R T / V = 2.357 atm. Real gases approach ideal behavior at low pressure and high temperature relative to their critical points. | P V = n R T | mole_concept | Apply the ideal-gas law to compute pressure, volume, or temperature. |
1,068 | chemistry | gases | ideal_gas_law | 4 | worked_example | Ideal-gas pressure for n=3.816 mol, V=38.63 L, T=581.8 K | For an ideal gas, P V = n R T. With n = 3.816 mol, V = 38.63 L, T = 581.8 K and R = 0.082057 L·atm·mol⁻¹·K⁻¹, the pressure is P = n R T / V = 4.715 atm. Real gases approach ideal behavior at low pressure and high temperature relative to their critical points. | P V = n R T | mole_concept | Apply the ideal-gas law to compute pressure, volume, or temperature. |
1,069 | chemistry | gases | ideal_gas_law | 4 | worked_example | Ideal-gas pressure for n=0.09328 mol, V=13.48 L, T=227 K | For an ideal gas, P V = n R T. With n = 0.09328 mol, V = 13.48 L, T = 227 K and R = 0.082057 L·atm·mol⁻¹·K⁻¹, the pressure is P = n R T / V = 0.1289 atm. Real gases approach ideal behavior at low pressure and high temperature relative to their critical points. | P V = n R T | mole_concept | Apply the ideal-gas law to compute pressure, volume, or temperature. |
1,070 | chemistry | gases | ideal_gas_law | 4 | worked_example | Ideal-gas pressure for n=0.2087 mol, V=39.57 L, T=224.2 K | For an ideal gas, P V = n R T. With n = 0.2087 mol, V = 39.57 L, T = 224.2 K and R = 0.082057 L·atm·mol⁻¹·K⁻¹, the pressure is P = n R T / V = 0.09704 atm. Real gases approach ideal behavior at low pressure and high temperature relative to their critical points. | P V = n R T | mole_concept | Apply the ideal-gas law to compute pressure, volume, or temperature. |
1,071 | chemistry | gases | ideal_gas_law | 4 | worked_example | Ideal-gas pressure for n=2.538 mol, V=25.3 L, T=451.4 K | For an ideal gas, P V = n R T. With n = 2.538 mol, V = 25.3 L, T = 451.4 K and R = 0.082057 L·atm·mol⁻¹·K⁻¹, the pressure is P = n R T / V = 3.716 atm. Real gases approach ideal behavior at low pressure and high temperature relative to their critical points. | P V = n R T | mole_concept | Apply the ideal-gas law to compute pressure, volume, or temperature. |
1,072 | chemistry | gases | ideal_gas_law | 4 | worked_example | Ideal-gas pressure for n=2.083 mol, V=4.58 L, T=480.7 K | For an ideal gas, P V = n R T. With n = 2.083 mol, V = 4.58 L, T = 480.7 K and R = 0.082057 L·atm·mol⁻¹·K⁻¹, the pressure is P = n R T / V = 17.94 atm. Real gases approach ideal behavior at low pressure and high temperature relative to their critical points. | P V = n R T | mole_concept | Apply the ideal-gas law to compute pressure, volume, or temperature. |
1,073 | chemistry | gases | ideal_gas_law | 4 | worked_example | Ideal-gas pressure for n=2.687 mol, V=14.23 L, T=446.4 K | For an ideal gas, P V = n R T. With n = 2.687 mol, V = 14.23 L, T = 446.4 K and R = 0.082057 L·atm·mol⁻¹·K⁻¹, the pressure is P = n R T / V = 6.916 atm. Real gases approach ideal behavior at low pressure and high temperature relative to their critical points. | P V = n R T | mole_concept | Apply the ideal-gas law to compute pressure, volume, or temperature. |
1,074 | chemistry | gases | ideal_gas_law | 4 | worked_example | Ideal-gas pressure for n=1.556 mol, V=10.56 L, T=404.5 K | For an ideal gas, P V = n R T. With n = 1.556 mol, V = 10.56 L, T = 404.5 K and R = 0.082057 L·atm·mol⁻¹·K⁻¹, the pressure is P = n R T / V = 4.893 atm. Real gases approach ideal behavior at low pressure and high temperature relative to their critical points. | P V = n R T | mole_concept | Apply the ideal-gas law to compute pressure, volume, or temperature. |
1,075 | chemistry | gases | ideal_gas_law | 4 | worked_example | Ideal-gas pressure for n=4.042 mol, V=19.84 L, T=414.6 K | For an ideal gas, P V = n R T. With n = 4.042 mol, V = 19.84 L, T = 414.6 K and R = 0.082057 L·atm·mol⁻¹·K⁻¹, the pressure is P = n R T / V = 6.93 atm. Real gases approach ideal behavior at low pressure and high temperature relative to their critical points. | P V = n R T | mole_concept | Apply the ideal-gas law to compute pressure, volume, or temperature. |
1,076 | chemistry | gases | ideal_gas_law | 4 | worked_example | Ideal-gas pressure for n=3.175 mol, V=34.21 L, T=533.8 K | For an ideal gas, P V = n R T. With n = 3.175 mol, V = 34.21 L, T = 533.8 K and R = 0.082057 L·atm·mol⁻¹·K⁻¹, the pressure is P = n R T / V = 4.065 atm. Real gases approach ideal behavior at low pressure and high temperature relative to their critical points. | P V = n R T | mole_concept | Apply the ideal-gas law to compute pressure, volume, or temperature. |
1,077 | chemistry | gases | ideal_gas_law | 4 | worked_example | Ideal-gas pressure for n=0.3399 mol, V=36.63 L, T=479.5 K | For an ideal gas, P V = n R T. With n = 0.3399 mol, V = 36.63 L, T = 479.5 K and R = 0.082057 L·atm·mol⁻¹·K⁻¹, the pressure is P = n R T / V = 0.3651 atm. Real gases approach ideal behavior at low pressure and high temperature relative to their critical points. | P V = n R T | mole_concept | Apply the ideal-gas law to compute pressure, volume, or temperature. |
1,078 | chemistry | gases | ideal_gas_law | 4 | worked_example | Ideal-gas pressure for n=4.234 mol, V=4.768 L, T=223.2 K | For an ideal gas, P V = n R T. With n = 4.234 mol, V = 4.768 L, T = 223.2 K and R = 0.082057 L·atm·mol⁻¹·K⁻¹, the pressure is P = n R T / V = 16.26 atm. Real gases approach ideal behavior at low pressure and high temperature relative to their critical points. | P V = n R T | mole_concept | Apply the ideal-gas law to compute pressure, volume, or temperature. |
1,079 | chemistry | gases | ideal_gas_law | 4 | worked_example | Ideal-gas pressure for n=2.178 mol, V=30.64 L, T=381.3 K | For an ideal gas, P V = n R T. With n = 2.178 mol, V = 30.64 L, T = 381.3 K and R = 0.082057 L·atm·mol⁻¹·K⁻¹, the pressure is P = n R T / V = 2.225 atm. Real gases approach ideal behavior at low pressure and high temperature relative to their critical points. | P V = n R T | mole_concept | Apply the ideal-gas law to compute pressure, volume, or temperature. |
1,080 | chemistry | gases | ideal_gas_law | 4 | worked_example | Ideal-gas pressure for n=1.553 mol, V=37.16 L, T=496.7 K | For an ideal gas, P V = n R T. With n = 1.553 mol, V = 37.16 L, T = 496.7 K and R = 0.082057 L·atm·mol⁻¹·K⁻¹, the pressure is P = n R T / V = 1.704 atm. Real gases approach ideal behavior at low pressure and high temperature relative to their critical points. | P V = n R T | mole_concept | Apply the ideal-gas law to compute pressure, volume, or temperature. |
1,081 | chemistry | gases | ideal_gas_law | 4 | worked_example | Ideal-gas pressure for n=0.606 mol, V=35.22 L, T=483.2 K | For an ideal gas, P V = n R T. With n = 0.606 mol, V = 35.22 L, T = 483.2 K and R = 0.082057 L·atm·mol⁻¹·K⁻¹, the pressure is P = n R T / V = 0.6821 atm. Real gases approach ideal behavior at low pressure and high temperature relative to their critical points. | P V = n R T | mole_concept | Apply the ideal-gas law to compute pressure, volume, or temperature. |
1,082 | chemistry | gases | ideal_gas_law | 4 | worked_example | Ideal-gas pressure for n=0.8275 mol, V=26.39 L, T=581.2 K | For an ideal gas, P V = n R T. With n = 0.8275 mol, V = 26.39 L, T = 581.2 K and R = 0.082057 L·atm·mol⁻¹·K⁻¹, the pressure is P = n R T / V = 1.496 atm. Real gases approach ideal behavior at low pressure and high temperature relative to their critical points. | P V = n R T | mole_concept | Apply the ideal-gas law to compute pressure, volume, or temperature. |
1,083 | chemistry | gases | ideal_gas_law | 4 | worked_example | Ideal-gas pressure for n=3.917 mol, V=8.765 L, T=488.3 K | For an ideal gas, P V = n R T. With n = 3.917 mol, V = 8.765 L, T = 488.3 K and R = 0.082057 L·atm·mol⁻¹·K⁻¹, the pressure is P = n R T / V = 17.91 atm. Real gases approach ideal behavior at low pressure and high temperature relative to their critical points. | P V = n R T | mole_concept | Apply the ideal-gas law to compute pressure, volume, or temperature. |
1,084 | chemistry | gases | ideal_gas_law | 4 | worked_example | Ideal-gas pressure for n=0.6434 mol, V=13.8 L, T=512.4 K | For an ideal gas, P V = n R T. With n = 0.6434 mol, V = 13.8 L, T = 512.4 K and R = 0.082057 L·atm·mol⁻¹·K⁻¹, the pressure is P = n R T / V = 1.96 atm. Real gases approach ideal behavior at low pressure and high temperature relative to their critical points. | P V = n R T | mole_concept | Apply the ideal-gas law to compute pressure, volume, or temperature. |
1,085 | chemistry | gases | ideal_gas_law | 4 | worked_example | Ideal-gas pressure for n=4.433 mol, V=1.953 L, T=508.6 K | For an ideal gas, P V = n R T. With n = 4.433 mol, V = 1.953 L, T = 508.6 K and R = 0.082057 L·atm·mol⁻¹·K⁻¹, the pressure is P = n R T / V = 94.72 atm. Real gases approach ideal behavior at low pressure and high temperature relative to their critical points. | P V = n R T | mole_concept | Apply the ideal-gas law to compute pressure, volume, or temperature. |
1,086 | chemistry | gases | ideal_gas_law | 4 | worked_example | Ideal-gas pressure for n=4.037 mol, V=3.662 L, T=308.8 K | For an ideal gas, P V = n R T. With n = 4.037 mol, V = 3.662 L, T = 308.8 K and R = 0.082057 L·atm·mol⁻¹·K⁻¹, the pressure is P = n R T / V = 27.94 atm. Real gases approach ideal behavior at low pressure and high temperature relative to their critical points. | P V = n R T | mole_concept | Apply the ideal-gas law to compute pressure, volume, or temperature. |
1,087 | chemistry | gases | ideal_gas_law | 4 | worked_example | Ideal-gas pressure for n=3.564 mol, V=4.315 L, T=430.7 K | For an ideal gas, P V = n R T. With n = 3.564 mol, V = 4.315 L, T = 430.7 K and R = 0.082057 L·atm·mol⁻¹·K⁻¹, the pressure is P = n R T / V = 29.19 atm. Real gases approach ideal behavior at low pressure and high temperature relative to their critical points. | P V = n R T | mole_concept | Apply the ideal-gas law to compute pressure, volume, or temperature. |
1,088 | chemistry | gases | ideal_gas_law | 4 | worked_example | Ideal-gas pressure for n=2.281 mol, V=25.23 L, T=344 K | For an ideal gas, P V = n R T. With n = 2.281 mol, V = 25.23 L, T = 344 K and R = 0.082057 L·atm·mol⁻¹·K⁻¹, the pressure is P = n R T / V = 2.553 atm. Real gases approach ideal behavior at low pressure and high temperature relative to their critical points. | P V = n R T | mole_concept | Apply the ideal-gas law to compute pressure, volume, or temperature. |
1,089 | chemistry | gases | ideal_gas_law | 4 | worked_example | Ideal-gas pressure for n=2.839 mol, V=13.13 L, T=347.1 K | For an ideal gas, P V = n R T. With n = 2.839 mol, V = 13.13 L, T = 347.1 K and R = 0.082057 L·atm·mol⁻¹·K⁻¹, the pressure is P = n R T / V = 6.158 atm. Real gases approach ideal behavior at low pressure and high temperature relative to their critical points. | P V = n R T | mole_concept | Apply the ideal-gas law to compute pressure, volume, or temperature. |
1,090 | chemistry | gases | ideal_gas_law | 4 | worked_example | Ideal-gas pressure for n=0.5235 mol, V=36.28 L, T=429.6 K | For an ideal gas, P V = n R T. With n = 0.5235 mol, V = 36.28 L, T = 429.6 K and R = 0.082057 L·atm·mol⁻¹·K⁻¹, the pressure is P = n R T / V = 0.5087 atm. Real gases approach ideal behavior at low pressure and high temperature relative to their critical points. | P V = n R T | mole_concept | Apply the ideal-gas law to compute pressure, volume, or temperature. |
1,091 | chemistry | gases | ideal_gas_law | 4 | worked_example | Ideal-gas pressure for n=1.15 mol, V=2.68 L, T=403.5 K | For an ideal gas, P V = n R T. With n = 1.15 mol, V = 2.68 L, T = 403.5 K and R = 0.082057 L·atm·mol⁻¹·K⁻¹, the pressure is P = n R T / V = 14.21 atm. Real gases approach ideal behavior at low pressure and high temperature relative to their critical points. | P V = n R T | mole_concept | Apply the ideal-gas law to compute pressure, volume, or temperature. |
1,092 | chemistry | gases | ideal_gas_law | 4 | worked_example | Ideal-gas pressure for n=4.316 mol, V=23.85 L, T=297.8 K | For an ideal gas, P V = n R T. With n = 4.316 mol, V = 23.85 L, T = 297.8 K and R = 0.082057 L·atm·mol⁻¹·K⁻¹, the pressure is P = n R T / V = 4.422 atm. Real gases approach ideal behavior at low pressure and high temperature relative to their critical points. | P V = n R T | mole_concept | Apply the ideal-gas law to compute pressure, volume, or temperature. |
1,093 | chemistry | gases | ideal_gas_law | 4 | worked_example | Ideal-gas pressure for n=1.921 mol, V=46.59 L, T=260 K | For an ideal gas, P V = n R T. With n = 1.921 mol, V = 46.59 L, T = 260 K and R = 0.082057 L·atm·mol⁻¹·K⁻¹, the pressure is P = n R T / V = 0.8798 atm. Real gases approach ideal behavior at low pressure and high temperature relative to their critical points. | P V = n R T | mole_concept | Apply the ideal-gas law to compute pressure, volume, or temperature. |
1,094 | chemistry | gases | ideal_gas_law | 4 | worked_example | Ideal-gas pressure for n=4.289 mol, V=45.74 L, T=421.1 K | For an ideal gas, P V = n R T. With n = 4.289 mol, V = 45.74 L, T = 421.1 K and R = 0.082057 L·atm·mol⁻¹·K⁻¹, the pressure is P = n R T / V = 3.24 atm. Real gases approach ideal behavior at low pressure and high temperature relative to their critical points. | P V = n R T | mole_concept | Apply the ideal-gas law to compute pressure, volume, or temperature. |
1,095 | chemistry | gases | ideal_gas_law | 4 | worked_example | Ideal-gas pressure for n=3.706 mol, V=16.43 L, T=367.7 K | For an ideal gas, P V = n R T. With n = 3.706 mol, V = 16.43 L, T = 367.7 K and R = 0.082057 L·atm·mol⁻¹·K⁻¹, the pressure is P = n R T / V = 6.807 atm. Real gases approach ideal behavior at low pressure and high temperature relative to their critical points. | P V = n R T | mole_concept | Apply the ideal-gas law to compute pressure, volume, or temperature. |
1,096 | chemistry | gases | ideal_gas_law | 4 | worked_example | Ideal-gas pressure for n=2.087 mol, V=13.93 L, T=488.1 K | For an ideal gas, P V = n R T. With n = 2.087 mol, V = 13.93 L, T = 488.1 K and R = 0.082057 L·atm·mol⁻¹·K⁻¹, the pressure is P = n R T / V = 6.002 atm. Real gases approach ideal behavior at low pressure and high temperature relative to their critical points. | P V = n R T | mole_concept | Apply the ideal-gas law to compute pressure, volume, or temperature. |
1,097 | chemistry | gases | ideal_gas_law | 4 | worked_example | Ideal-gas pressure for n=0.3987 mol, V=25.35 L, T=349.1 K | For an ideal gas, P V = n R T. With n = 0.3987 mol, V = 25.35 L, T = 349.1 K and R = 0.082057 L·atm·mol⁻¹·K⁻¹, the pressure is P = n R T / V = 0.4505 atm. Real gases approach ideal behavior at low pressure and high temperature relative to their critical points. | P V = n R T | mole_concept | Apply the ideal-gas law to compute pressure, volume, or temperature. |
1,098 | chemistry | gases | ideal_gas_law | 4 | worked_example | Ideal-gas pressure for n=4.511 mol, V=40.31 L, T=271.7 K | For an ideal gas, P V = n R T. With n = 4.511 mol, V = 40.31 L, T = 271.7 K and R = 0.082057 L·atm·mol⁻¹·K⁻¹, the pressure is P = n R T / V = 2.495 atm. Real gases approach ideal behavior at low pressure and high temperature relative to their critical points. | P V = n R T | mole_concept | Apply the ideal-gas law to compute pressure, volume, or temperature. |
1,099 | chemistry | gases | ideal_gas_law | 4 | worked_example | Ideal-gas pressure for n=4.907 mol, V=3.912 L, T=581.6 K | For an ideal gas, P V = n R T. With n = 4.907 mol, V = 3.912 L, T = 581.6 K and R = 0.082057 L·atm·mol⁻¹·K⁻¹, the pressure is P = n R T / V = 59.87 atm. Real gases approach ideal behavior at low pressure and high temperature relative to their critical points. | P V = n R T | mole_concept | Apply the ideal-gas law to compute pressure, volume, or temperature. |
1,100 | chemistry | gases | ideal_gas_law | 4 | worked_example | Ideal-gas pressure for n=2.331 mol, V=42.32 L, T=312.9 K | For an ideal gas, P V = n R T. With n = 2.331 mol, V = 42.32 L, T = 312.9 K and R = 0.082057 L·atm·mol⁻¹·K⁻¹, the pressure is P = n R T / V = 1.414 atm. Real gases approach ideal behavior at low pressure and high temperature relative to their critical points. | P V = n R T | mole_concept | Apply the ideal-gas law to compute pressure, volume, or temperature. |
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