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values | title large_stringlengths 24 201 | doi large_stringlengths 17 31 |
|---|---|---|---|---|---|---|---|---|---|---|---|
unclear | other | 2026 | null | null | null | null | null | null | null | Measuring pH Changes Inside a Bipolar Membrane Junction | 10.1021/acsenergylett.5c03710 |
CO2RR | CO | 2026 | null | null | null | null | null | null | null | Unveiling Direct and Indirect Pathways of Electrochemical CO2 Reduction in Amine‐Based Carbon Capture Electrolytes | 10.1002/anie.202521624 |
both | C2H4 | 2026 | null | null | null | null | null | null | null | C–C Bond Formation during Electrochemical CO2 Reduction on Pristine Cu(100) Unlikely to Involve Adsorbed CO at Any Potential | 10.1021/jacs.5c20300 |
CO2RR | CH4 | 2026 | 76 | 881.578947 | null | -0.88 | RHE | 1,230 | MEA | Engineering d-orbital of copper single-atom sites toward industrial-level electrocatalytic methanation | 10.1038/s41467-026-69260-z |
CO2RR | HCOO | 2026 | 93.1 | 2.9 | null | -0.6 | SHE | 64 | H-cell | An interfacial-intramolecular electron highway for accelerated electrocatalytic CO2 reduction by an O2-tolerant formate dehydrogenase | 10.1038/s41467-026-69827-w |
CORR | C2H4 | 2026 | 72 | null | null | null | null | null | null | Electrosynthesis of ethylene from syngas | 10.1038/s41893-025-01764-w |
CO2RR | CO | 2026 | 90 | 400 | 21 | null | null | 1,000 | stack MEA | Kilowatt-scale alkali-cation-free CO2 electrolysis via accelerating mass transfer | 10.1038/s41467-026-69175-9 |
CO2RR | CO | 2026 | null | 435 | null | null | null | null | MEA | Azobenzene-derived coordination polymers for redox-mediated integration of CO2 capture and electrolysis | 10.1038/s41929-026-01487-x |
CO2RR | C2+ | 2026 | 73.9 | 700 | null | null | null | null | flow cell | Ionomer Charge Density Modulates Interfacial Water and Reaction Intermediates for CO2 Electrolysis to C 2 Products | 10.1021/acscatal.5c08472 |
CO2RR | CH4 | 2026 | 73 | 600 | null | null | null | null | null | Steering CO2 Electroreduction to Methane with an Atomically Precise Copper Nanocluster | 10.1021/acscatal.5c08305 |
CO2RR | other | 2026 | null | null | null | null | null | null | null | Cation Regulates Adsorption–Desorption Behaviors To Promote Electrochemical CO2 Reduction Reaction | 10.1021/acscatal.5c08798 |
CO2RR | other | 2026 | null | null | null | null | null | null | null | Screening Framework of Metal–N–C Diatomic Catalysts for Electrochemical CO2 Reduction | 10.1021/acscatal.5c07689 |
both | C2+ | 2026 | null | null | null | null | null | null | null | Revisiting the Nature and Catalytic Role of the 530 cm –1 Raman Peak on Cu Catalysts during CO (2) Electroreduction | 10.1021/acscatal.5c07893 |
CO2RR | C2+ | 2026 | null | null | null | null | null | null | null | Transition State Characterization and Electrode Potential Effects on Thermally Driven *CO–*CO Coupling in the Free Energy Landscape | 10.1021/acscatal.5c05049 |
CORR | C2H4 | 2026 | 79 | 150 | null | null | null | null | MEA | Small alkali cations direct CO electroreduction to hydrocarbons rather than oxygenates | 10.1038/s41557-025-02061-x |
CO2RR | CO | 2026 | 90 | 456.666667 | null | null | null | 150 | MEA | Molecularly Engineered Polystyrene-Imidazolium Polyelectrolytes for CO2 Electrolysis in Strongly Acidic Media | 10.1021/acsenergylett.5c04199 |
CO2RR | C2+ | 2026 | null | null | null | null | null | null | null | Coupled Microenvironments for Artificial Photosynthesis of a C 6 Oxygenated Product from CO2 | 10.1021/acsenergylett.5c04064 |
CO2RR | HCOO | 2026 | 96.1 | null | null | null | null | null | flow cell | Electrified CO2 -to-HCOOH Valorization: A Comparative Technical Analysis on Acidic Flow Cell and Solid-State Electrolyte Cell Reactors | 10.1021/acsenergylett.5c03557 |
CO2RR | HCOOH | 2026 | 98 | null | null | null | null | null | flow cell | Integrated Capture and Conversion of Dilute CO2 Using an Oxygen Tolerant Porous Carbon Modified Gas Diffusion Electrode | 10.1021/acsenergylett.5c03504 |
CO2RR | CO | 2026 | null | null | null | null | null | null | null | Electrochemical Reactive Capture of Carbon Dioxide Using an Amine Sorbent and a Homogeneous Cobalt Electrocatalyst | 10.1021/acsenergylett.5c03829 |
CO2RR | C2+ | 2026 | 77 | null | null | null | null | null | null | Discovering Electron‐Sponge Behavior at Organic‐Metal Interfaces for CO2 Electroreduction via Machine Learning | 10.1002/anie.202525751 |
CO2RR | C2H4 | 2026 | 68.8 | 800 | null | null | null | null | null | Steering Ethylene Electrosynthesis by Controlling Interfacial Water Orientation | 10.1002/anie.202520546 |
CO2RR | C2+ | 2026 | 87 | 1,000 | null | null | null | 255 | flow cell | Yb‐Doped Cu‐Based Catalyst Boosting Electrochemical CO2 ‐to‐C 2+ Reduction Across pH Range at Ampere‐Level Current Density | 10.1002/anie.202510755 |
CO2RR | C2+ | 2026 | 70.4 | 448.7 | null | null | null | null | null | Solid Solution In Situ‐Reconstructed Mg‐Cu 2 O/Cu Heterointerface for CO2 Reduction to C 2+ Alcohols in Neutral and Acidic Media | 10.1002/anie.8293761 |
CO2RR | CH3CH2OH | 2026 | 53 | 800 | null | null | null | 20 | flow cell | Tailoring Hydrogenation Pathway to Redirect CO2 Electroreduction From Ethylene to Ethanol | 10.1002/anie.202523475 |
CO2RR | C2H4 | 2026 | 78.6 | 337.035623 | null | -0.8 | RHE | 120 | flow cell | Tuning Cu–Cu Spacing in Single‐Atomic Layer Cu Catalysts for Efficient and Stable CO2 ‐To‐C 2 H 4 Electroreduction | 10.1002/adma.202522842 |
CO2RR | C2+ | 2026 | 77.97 | null | null | null | null | null | stack MEA | Water Management Using Massively Produced Calcium Carbonate for Pilot‐Scale CO2 Electrolysis | 10.1002/adma.202519757 |
CO2RR | CO(NH2)2 | 2026 | 11 | 64 | null | -1.2 | RHE | 48 | H-cell | Spectroelectrochemical insight into copper cobalt catalysts for CO2 and nitrite co-electroreduction to urea | 10.1038/s41467-026-68481-6 |
both | CO(NH2)2 | 2026 | 50 | 14.4 | null | -0.15 | RHE | 1,000 | flow cell | Selective electrosynthesis of urea from nitrate and carbon dioxide with low overpotential | 10.1038/s41467-026-68497-y |
CO2RR | HCOO | 2026 | 90 | 100 | 1.7 | null | null | 208 | flow cell | Membrane-free CO2 hydrogenation electrolyzer for salt precipitation management in acidic electrochemical CO2 reduction | 10.1038/s41467-026-68600-3 |
CO2RR | HCOO | 2026 | 95.5 | 300 | null | -1.5 | RHE | 289 | flow cell | Operando nuclear magnetic resonance decodes alkali-tuned proton-electron relay boosting CO2-to-formate conversion | 10.1038/s41467-026-68604-z |
CO2RR | CO | 2026 | 90 | null | null | -1 | RHE | 8 | MEA | Electrochemical CO2 Reduction in the Presence of SO2 Impurities on a Nitrogen-Doped Carbon Electrocatalyst | 10.1021/jacs.5c11790 |
CO2RR | CO | 2026 | 100 | 122 | null | -1 | RHE | 100 | flow cell | Electric-field-driven CO2 polarization and bioinspired proton blocking unlock CO2 reduction in strong acid without metal cations | 10.1038/s41467-026-68435-y |
CO2RR | CO | 2026 | 96 | 100 | -3.7 | null | null | 0.5 | MEA | Heavy is the Crown: Crown Ether Modulation of Cobalt Porphyrin CO2 Electroreduction in Zero‐Gap Electrolyzers | 10.1002/anie.202525189 |
CO2RR | CO | 2026 | 94.23 | 1,250 | null | null | null | 100 | null | Surface Electrostatic Gradient of Perovskite Boosts Metal in Situ Exsolution and CO2 Electrolysis in Solid Oxide Electrolyzer | 10.1002/anie.202520056 |
CO2RR | CH3CH2OH | 2026 | 80 | 1,000 | null | null | null | null | flow cell | Oxygen‐Bridged Dual Catalytic Sites Enable Asymmetric C─C Coupling for Efficient CO2 Electroreduction to Ethanol | 10.1002/anie.202524425 |
CO2RR | CH3OH | 2026 | 65 | null | null | -0.5 | RHE | 20 | H-cell | Bioinspired Mo‐on‐Cu Nanosheets Enable Potential‐Dependent Electrosynthesis of Urea and Methanol via Interfacial Electron Redistribution | 10.1002/anie.202520792 |
CO2RR | CO | 2026 | 92 | null | null | null | null | null | null | Mechanistic Insights into the Roles of Electrolyte Additives in Enhancing CO2 Electroreduction Efficiency | 10.1021/jacs.5c05446 |
CO2RR | CO | 2026 | null | 3,800 | 1.5 | null | null | 200 | null | Directional Ion Migration Enables Precise Heterointerface Optimization for High-Temperature CO2 Electrolysis | 10.1021/jacs.5c21833 |
CO2RR | C2H4 | 2026 | null | null | null | null | null | 200 | null | Upgrading CO2 and H2 O to Analytical-Grade Propanal via an Electrocatalysis–Thermal Catalysis Relay on Single-Atom Catalysts | 10.1021/jacs.5c22374 |
CO2RR | CO | 2026 | null | null | null | null | null | null | null | Photothermally Driven Efficient CO2 Electroreduction Based on a Superhydrophobic Electrode | 10.1021/jacs.5c19088 |
CO2RR | other | 2026 | null | null | null | null | null | null | null | Critical Role of Reaction Kinetics in Selectivity Control of Electrochemical CO2 Reduction on Copper-Based Single-Atom Alloys | 10.1021/acscatal.5c05119 |
CO2RR | CO | 2026 | 94 | null | null | -2.3 | Fc+/0 | 1.8 | H-cell | Selective CO2 Electroreduction to CO by an Organometallic Nickel Catalyst Featuring a C 3 –Symmetric Tris(Phosphino)Alkyl Ligand | 10.1021/acscatal.5c08299 |
CO2RR | C2+ | 2026 | null | null | null | null | null | null | null | Probing Anion Effect on Hydrogen Evolution and C–C Coupling on Copper in Acidic CO2 Reduction | 10.1021/acscatal.5c07600 |
CO2RR | CO | 2026 | 95 | 20 | null | -0.74 | RHE | 50 | null | Solid-State K + Coordination Modulates Electronic Structure of Ni–N 3 Single-Atom Catalysts for CO2 Electroreduction | 10.1021/acscatal.5c09029 |
CO2RR | CO | 2026 | null | null | null | -2.1 | unclear | null | null | Selective CO2 Reduction by Bis(bipyridine)cobalt(II) Catalysts: The Role of Pendant Pyridine as a Proton Acceptor | 10.1021/acscatal.5c07052 |
CO2RR | CH3OH | 2026 | null | null | null | null | null | null | null | Inside Back Cover: Support‐Induced Interfacial Effects Steer Methanol Selectivity in CO2 Electroreduction by Immobilized Cobalt Phthalocyanine (Angew. Chem. Int. Ed. 8/2026) | 10.1002/anie.2026-m1001094000 |
CO2RR | CO | 2026 | 100 | null | null | -2.4 | Fc+/0 | 2.5 | null | Molecular Electrocatalyst Enables Direct Electrochemical Capture and Conversion of CO2 up to Atmospheric Concentration | 10.1002/anie.8293935 |
CO2RR | C2+ | 2026 | null | null | null | -0.6 | RHE | null | null | Local pH Effects on the Temperature Dependence of Product Formation in CO2 Electrolyzers | 10.1021/jacs.5c20444 |
CO2RR | C2H4 | 2026 | 64 | null | null | null | null | null | null | Nanoparticle-Single-Atom Tandem Catalyst within a Metal–Organic Framework for Efficient Ethylene Electrosynthesis | 10.1021/jacs.5c19451 |
CO2RR | CO | 2026 | 93.3 | null | null | null | null | null | H-cell | Pore-Space Design of Cobalt–Porphyrin Covalent Organic Frameworks Suppresses Inactive Bridged-CO Intermediates for Selective CO2 Electroreduction | 10.1021/jacs.5c18778 |
both | CO(NH2)2 | 2026 | 78.61 | 21.87 | null | -0.4 | RHE | 20 | flow cell | Sequential-chain coupling over hierarchical click-sites enables highly selective urea electrosynthesis | 10.1038/s41467-026-69207-4 |
CO2RR | CO | 2026 | 92 | 11.4 | null | -0.75 | RHE | 100 | flow cell | Bioadaptive Ni single atoms unlock high rate microbial electrosynthesis of isopropanol from CO2 | 10.1038/s41467-026-68358-8 |
CO2RR | CO | 2026 | null | 410 | 3.09 | null | null | null | null | Ionomer‐Driven Reaction Microenvironment Control in Bicarbonate‐Mediated Integrated CO2 Capture and Electrolysis | 10.1002/anie.202523118 |
CO2RR | methylpiperidine | 2026 | 93.4 | 155.2 | null | null | null | null | null | Highly Efficient Tandem Electrosynthesis of Dimethyl Carbonate From CO2 | 10.1002/anie.4855063 |
CO2RR | CO | 2026 | 96.8 | 461.983471 | null | -1.7 | RHE | 70 | null | Regulation of the D ‐Band Center Through Ligand Engineering in Silver Cluster‐Based MOFs Enhances Acidic CO2 Electroreduction | 10.1002/anie.202518779 |
CO2RR | CH3OH | 2026 | 80 | 450 | null | null | null | null | null | Electron Cloud Polarization of Single‐Atom Cu Boosts Electrocatalytic Reduction of High‐ and Low‐Concentration CO2 to Methanol | 10.1002/anie.202523844 |
CO2RR | CO | 2026 | 97.3 | 299.897225 | null | null | null | 136 | MEA | Mesoporous Engineering of Single‐Atom Catalyst for Industry‐Level Electrocatalytic CO2 Reduction in Membrane Electrode Assemblies | 10.1002/anie.202523859 |
CO2RR | C2 | 2026 | null | null | null | null | null | null | null | Dynamic Interface Engineering via Mechanistic Understanding of Copper Reconstruction in Electrochemical CO2 Reduction Reaction | 10.1021/jacs.5c16244 |
CO2RR | C2+ | 2026 | null | null | null | null | null | null | null | Electron-Rich Subnanometer Cu Clusters Facilitate CO–CO Coupling in CO2 Electroreduction | 10.1021/jacs.5c12495 |
CO2RR | CO | 2026 | 15 | 12 | null | -1.1 | SHE | 1 | flow cell | Solution and Active Site Speciation Drive Selectivity for Electrocatalytic Reactive Carbon Capture in Diethanolamine over Ni–N–C Catalysts | 10.1021/jacs.5c11791 |
CO2RR | other | 2026 | null | null | null | null | null | null | null | Mechanism-Dependent Oxygen Tolerance of Mn(bpy)CO 3 Br in Electrochemical CO2 Reduction | 10.1021/jacs.5c17737 |
CO2RR | CH4 | 2026 | 79.1 | null | null | null | null | null | null | Neutral Electrosynthesis of Methane from Diluted CO2 on Dense Cu Sites Embedded Covalent Organic Frameworks | 10.1021/jacs.5c17917 |
CO2RR | CO | 2026 | null | null | null | null | null | null | null | A Self-Moderation Mechanism in CO2 Electroreduction Catalyzed by a Cobalt Macrocyclic Complex | 10.1021/jacs.5c19804 |
CO2RR | CO | 2026 | 100 | null | null | null | null | null | null | Dual-Spin Centers in a Grid-like Covalent Organic Framework Promote Near-Unity CO2 Electroreduction | 10.1021/jacs.5c19281 |
CO2RR | CH3CH2OH | 2026 | 50.1 | 2,000 | null | null | null | 100 | flow cell | Ampere-level CO2 electroreduction to multi-carbon oxygenates in acidic electrolyte through surface microenvironment reconstruction | 10.1038/s41467-026-68739-z |
CO2RR | carbon | 2025 | null | null | null | null | null | null | null | Growing the carbon chain | 10.1038/s41929-025-01455-x |
CO2RR | C2+ | 2025 | null | null | null | -1.3 | SHE | 1.5 | null | CO2 electroreduction on Cu operates via an alternative chain growth mechanism to form C–C bonds at elevated temperature and pressure | 10.1038/s41929-025-01451-1 |
CO2RR | C2+ | 2026 | null | null | null | null | null | null | null | Sulfur enhances electrochemical CO2 reduction over porphyrin catalysts | 10.1038/s44160-025-00966-6 |
both | other | 2026 | 12 | 150 | null | null | null | null | null | Artificial synthesis of carbohydrates from electrochemically fixed carbon dioxide | 10.1038/s44160-025-00961-x |
CO2RR | HCOO | 2025 | 96 | 100 | null | null | null | 100 | null | Energy-efficient indirect (bi)carbonate electroreduction in a porous solid electrolyte reactor | 10.1038/s41893-025-01755-x |
CORR | C2+ | 2025 | 70 | null | null | -0.7 | RHE | null | flow cell | Steric and hydrophilic/hydrophobic effects of organic cations on electrochemical CO reduction | 10.1038/s41467-025-67761-x |
CO2RR | HCOOH | 2025 | 99 | 34 | null | -1.12 | RHE | 8 | H-cell | Protonation pathway for CO2 reduction mediated by coordinated H2O on active sites | 10.1038/s41467-025-66145-5 |
CO2RR | other | 2025 | 17.6 | null | null | null | null | null | null | Pre-Protonation Reaction Pathway for CO2 Electrolysis to n-Propanol | 10.1021/jacs.5c19578 |
CO2RR | CO | 2025 | 80 | 200 | null | null | null | 480 | MEA | Confinement Reconstruction Unlocks Stable Ru Single Atom-Doped IrO x Anodes for Long-Term High-Rate CO2 Electrolysis | 10.1021/acscatal.5c06756 |
CORR | other | 2025 | 31 | 89.354839 | null | null | null | null | null | Switching CO Electroreduction Pathway to n -Propanol by Pulsed Electrolysis | 10.1021/acscatal.5c06476 |
CO2RR | CO | 2025 | null | null | null | null | null | null | flow cell | Quantitative Understanding of the Reactivity of Bicarbonate and the Role of Cations in Gas Diffusion Electrode Flow Cells for CO2 Reduction | 10.1021/acscatal.5c06855 |
CO2RR | C2+ | 2025 | 80.5 | 2,200 | null | null | null | null | flow cell | Enhancement of Ampere-Level Current Density of Multicarbon Products by Doping and Stress-Regulated Cu Dual Sites | 10.1021/acscatal.5c07776 |
CO2RR | HCOO | 2025 | 62 | null | null | null | null | null | null | Selective Electrochemical CO2 Reduction to Formate: Mechanistic Insights into [FeFe]-Hydrogenase Models with Tunable Bridging Ligands | 10.1021/acscatal.5c04268 |
CO2RR | CO | 2025 | 97 | null | null | null | null | 1 | null | Enhanced Electrocatalytic and Selective CO2 -to-CO Reduction by a Rhenium(I) Complex Bearing 6,6′-Substituted 2,2′-Bipyridines | 10.1021/acscatal.5c06871 |
CO2RR | CO | 2025 | 100 | 3,240 | 1.55 | null | null | null | null | Modulating Orbital Hybridization in SrFeO 3-δ -Based Electrodes for Efficient Reversible Solid Oxide Cells | 10.1021/acscatal.5c06300 |
CO2RR | CH4 | 2025 | 61.2 | null | null | null | null | 35 | null | Enhanced Electrochemical Carbon Dioxide Methanation via Inhibition of Proton Transport in the Outer Helmholtz Plane | 10.1021/acscatal.5c07463 |
CO2RR | C2+ | 2025 | null | null | null | -0.2 | RHE | 0.083333 | null | In Situ Reconstruction of a Cu(100) Surface for Promoted C–C Coupling in CO2 Electroreduction from First-Principles Multiscale Modeling | 10.1021/acscatal.5c07187 |
CO2RR | other | 2025 | 8.79 | null | null | null | null | null | null | Heterogenized Molecular Nickel Terpyridine Catalysts for the Electrochemical Formation of C–N Bonds | 10.1021/acscatal.5c05906 |
CO2RR | other | 2025 | null | 500 | null | null | null | 150 | null | N-Doped-Induced Local Covalency Elevation for Enhancing Cathodic Performance of Solid Oxide Electrolysis Cells | 10.1021/acscatal.5c07349 |
CO2RR | CO | 2025 | null | null | null | -0.6 | RHE | null | null | Decoding Electric Double Layer Effects on CO2 Electroreduction on Ni–N–C via Multiscale Modeling | 10.1021/acscatal.5c06835 |
CO2RR | CH4 | 2025 | 64.2 | 400.155763 | null | null | null | null | flow cell | Tailoring N-Coordination Species in Cu Single-Atom Catalysts for Selective Electrocatalytic CO2 -to-CH4 Conversion | 10.1021/acscatal.5c08050 |
CO2RR | CO | 2025 | 100 | 200 | 2.75 | null | null | null | flow cell | Local Variations in Current Density and Selectivity in CO2 Electrolyzers | 10.1021/acsenergylett.5c03770 |
CORR | other | 2025 | 32.1 | null | null | -0.78 | RHE | 100 | flow cell | Interfaces Enhanced n -Propanol Electrosynthesis by Impeding C 2 Intermediate Desorption in CO Conversion | 10.1021/acsenergylett.5c03265 |
CO2RR | C2H4 | 2025 | 55.6 | 300 | null | null | null | 60 | flow cell | Oxygen Vacancy Bridged Cu–Ce Pairs Boost CO2 Electroreduction to C 2 H 4 via Accelerating *H Supply and Asymmetric C–C Coupling | 10.1021/acsenergylett.5c03256 |
both | C2+ | 2025 | 80 | 500 | null | null | null | 70 | flow cell | Carbon Efficient CO2 Interfaces in Acid through Ion Management Channels | 10.1021/acsenergylett.5c02981 |
CO2RR | other | 2025 | null | null | null | null | null | null | MEA | Organic Cation Gating Control for Water Management in CO2 Membrane Electrode Assembly Electrolyzers | 10.1021/acsenergylett.5c03644 |
CO2RR | CO | 2025 | 56 | 100 | 2.9 | null | null | null | null | Reactive Carbon Electrolysis at <3 V, in an Electrolyzer Containing a Bipolar Membrane Operating under Forward Bias | 10.1021/acsenergylett.5c02914 |
CO2RR | CO(NH2)2 | 2025 | 7 | null | null | -0.67 | RHE | null | H-cell | Accurate Urea Detection during Electrocatalytic Coreduction of CO2 and NO 3 – | 10.1021/acsenergylett.5c02590 |
CO2RR | CO | 2025 | null | null | null | null | null | null | null | Double-Layer Design Enables Independent Kinetic Modulation in CO2 Electrolysis | 10.1021/acsenergylett.5c03397 |
CO2RR | CO | 2025 | null | 200 | null | null | null | 100 | MEA | Polymer Membrane Gas-Diffusion Layer with Nanowire Catalyst Implemented in Zero-Gap CO2 Electrolyzer Prevents Salt Precipitation-Induced Failure | 10.1021/acsenergylett.5c03821 |
CO2RR | HCOO | 2025 | 99 | 873.737374 | null | null | null | 500 | null | Ultrastable Implanting‐Structured Catalyst for Long‐Lasting Acidic CO2 Electrolysis with Industrial‐Level Current Densities | 10.1002/anie.202524258 |
CO2RR | other | 2025 | null | 100,000 | 3.14 | null | null | null | null | Building Topological‐Disordered High‐Entropy Amorphous Oxides for Adaptive Compensation During Alternating CO2 Redox Cycling | 10.1002/anie.202523507 |
CORR | C2+ | 2025 | 70 | 1,100 | null | null | null | null | flow cell | Atomically Isolated Cd Sites Boosting CO Electroreduction to C 2+ Alcohols at Ampere‐Level Current Densities | 10.1002/anie.202524324 |
CO2RR | HCOOH | 2025 | 95 | null | null | -1.8 | RHE | null | flow cell | Lewis Acid Adsorption Promotes CO2 Enrichment for Efficient Formic Acid Electrosynthesis on Reconstructed Bi 2 O2 CO 3 in Acidic Media | 10.1002/anie.202512476 |
Subsets and Splits
CO2RR Data Training Records 202
This query performs basic filtering to retrieve records from 2026, which is a simple data retrieval operation with minimal analytical value.