type large_stringclasses 4
values | product large_stringclasses 19
values | year large_stringdate 2014-01-01 00:00:00 2026-01-01 00:00:00 | FE float64 7 200 ⌀ | J float64 0.1 100k ⌀ | E_full float64 -4 21 ⌀ | E_cathode float64 -3.4 0.6 ⌀ | RE_type large_stringclasses 13
values | Stability float64 0.02 8k ⌀ | Cell large_stringclasses 4
values | title large_stringlengths 24 201 | doi large_stringlengths 17 31 |
|---|---|---|---|---|---|---|---|---|---|---|---|
CO2RR | HCOO | 2025 | 99.9 | 1,200 | null | null | null | null | flow cell | Understanding the Affinity Effect of C/O-Correlative Intermediates for the Selective Electrosynthesis of HCOOH | 10.1021/acscatal.5c04520 |
CO2RR | CH3OH | 2025 | 46 | 43.478261 | null | null | null | null | flow cell | Understanding the Effects of Electrolyzer Geometry and Flow Conditions on Methanol Formation via Gas-Fed Electrochemical CO2 Reduction | 10.1021/acscatal.5c04558 |
CO2RR | CO | 2025 | 98.8 | 251.417004 | null | null | null | null | null | Revealing the Dynamic Microenvironment of the Ag/CeO2 Surface for Robust Electrocatalytic CO2 Reduction | 10.1021/acscatal.5c05339 |
CO2RR | CO | 2025 | 100 | 400 | 3.3 | null | null | 24 | null | Neural Algorithm Aided Operation of CO2 Electrolyzers | 10.1021/acsenergylett.5c01133 |
CO2RR | C2+ | 2025 | null | 9.3 | null | -1 | RHE | 1 | H-cell | Revisiting Active Site Quantification in CO2 Electroreduction: The Case for CO Displacement | 10.1021/acsenergylett.5c01642 |
CO2RR | other | 2025 | null | null | null | null | null | null | null | Impact of Intermittent Operation on Zero-gap CO2 Electrolyzers | 10.1021/acsenergylett.5c01909 |
CO2RR | other | 2025 | null | null | null | null | null | null | null | Residual Faraday Efficiency Enabling Interpretable Data-Driven Optimization of Mass Transport for CO2 Electroreduction | 10.1021/acsenergylett.5c02021 |
CO2RR | C2+ | 2025 | null | null | null | null | null | null | null | Atomic Origins of Roughness-Enhanced Multicarbon Selectivity in Copper-Catalyzed CO2 Electroreduction | 10.1021/acsenergylett.5c02126 |
CO2RR | C2+ | 2025 | 61 | 300 | null | null | null | 16 | flow cell | Chemostructurally Stable Polyionomer Coatings Regulate Proton-Intermediate Landscape in Acidic CO2 Electrolysis | 10.1021/jacs.5c01314 |
CO2RR | HCOOH | 2025 | 32.77 | null | -0.5 | null | null | 12 | null | Carbon Reduction Powered by Natural Electrochemical Gradients under Submarine Hydrothermal Vent Conditions | 10.1021/jacs.5c01948 |
CO2RR | CH4 | 2025 | 75.8 | 400.131926 | null | null | null | null | null | Engineering the Coordination Environment of Metal Centers for Selective and High-Current CO2 Electromethanation | 10.1021/jacs.5c02458 |
both | other | 2025 | null | null | null | null | null | null | null | Universal Formation, Dynamics, and Reactivities of *CObridge Accompanying Spontaneous Reconstruction of Cu during Electrochemical CO2 or CO Reduction | 10.1021/jacs.5c03886 |
CO2RR | HCOO | 2025 | 93.2 | 338.412017 | null | -1 | RHE | null | null | Boosting Electrochemical CO2 Reduction to Formate over La-Doped SnO2 via Pinning Effect and Water Activation | 10.1021/jacs.5c03978 |
CO2RR | CO | 2025 | null | null | null | -0.85 | Ag/AgCl | null | null | Competitive Carbonate Binding Hinders Electrochemical CO2 Reduction to CO on Cu Surfaces at Low Overpotentials | 10.1021/jacs.5c04518 |
CO2RR | CO | 2025 | 60 | null | null | null | null | null | null | Constructing Monolayer Fe Clusters as Model Catalysts for CO2 Electroreduction | 10.1021/jacs.5c05325 |
CO2RR | C2H4 | 2025 | 38 | 7.894737 | null | -1.2 | RHE | 15 | H-cell | Active Sites under Electronic Effect Are More Sensitive to Microenvironment in CO2 Electroreduction | 10.1021/jacs.5c05697 |
CO2RR | carbon | 2025 | null | null | null | null | null | null | null | Local Coordination Environment-Driven Structural Dynamics of Single-Atom Copper and the CO2 Electroreduction Pathway | 10.1021/jacs.5c05984 |
CO2RR | C2H4 | 2025 | 70.2 | 800 | null | null | null | null | null | Enhancing CO2 Electroreduction to Ethylene in Acidic Solution by Optimizing Cation Configuration on the Cu Surface | 10.1021/jacs.5c06402 |
CO2RR | C2H4 | 2025 | 67 | 240 | null | null | null | null | flow cell | Tailoring Solvent-Mediated CO2 Reservoirs at Heterointerfaces for Enhanced Electrochemical CO2-to-C2H4 Conversion | 10.1021/jacs.5c06799 |
CORR | carbon | 2025 | null | 1,000 | null | null | null | 1,000 | MEA | Enduring CO Electrolysis with Ampere-Level Reaction Rates Using Nickel-Doped Iridium Catalysts | 10.1021/jacs.5c06853 |
CORR | other | 2025 | 86 | null | null | null | null | null | null | High-Nuclearity Copper Molecular Catalysts for Electrocatalytic CO-to-Acetate Conversion | 10.1021/jacs.5c08144 |
CO2RR | C2+ | 2025 | null | null | null | null | null | null | null | In Situ Raman Spectroscopy Reveals the Multifunctional Role of Interfacial Water in CO2-to-C2 Electroreduction on Cu( hkl ) Surfaces | 10.1021/jacs.5c08922 |
CO2RR | other | 2025 | null | 1,730 | null | null | null | null | null | Quantifying Interface-Dependent Active Sites Induced by Topotactic Exsolution for CO2 Electrolysis | 10.1021/jacs.5c09067 |
CO2RR | other | 2025 | null | null | null | -1.3 | RHE | null | null | Plasmon-Enhanced C2H4 Generation in the CO2 Electroreduction Reaction on a CuPd Tandem Catalyst | 10.1021/jacs.5c10517 |
CO2RR | C2+ | 2025 | null | null | null | null | null | null | null | Enhancing Carbon Dioxide Reduction Performance on Copper via Surface Reconstruction Induced by Spontaneous Diazonium Salt Grafting | 10.1021/jacs.5c11431 |
CO2RR | HCOOH | 2025 | 36 | 300 | null | null | null | null | null | Immobilized Azole Layer Tunes Interfacial Hydrogen Source for CO2 Electroreduction in Strong Acid | 10.1021/jacs.5c11829 |
CO2RR | CO | 2025 | 94.5 | 800 | null | null | null | null | null | Enhanced *COOH Adsorption over Edge-Rich Ni–N4 Sites for Efficient Acidic CO2 Electroreduction | 10.1021/jacs.5c12583 |
CO2RR | CO | 2025 | null | null | null | null | null | null | null | Spectro-Electrochemical Insights into Electrocatalytic CO2 Reduction in Acidic Media through Model Catalyst Design | 10.1021/jacs.5c12659 |
CO2RR | other | 2025 | null | null | null | 0.28 | RHE | null | null | Dynamic Single-Atom Catalysts on Gallium To Overcome the Scaling Relationship Limit: AIMD Screening for CO2 Reduction and Hydrogen Evolution Reactions | 10.1021/jacsau.5c00823 |
both | CH3OH | 2025 | 41 | 17.804878 | null | -0.96 | RHE | null | H-cell | Nanoconfinement promotes CO2 electroreduction to methanol on a molecular catalyst | 10.1038/s41467-025-62656-3 |
CO2RR | other | 2025 | 80.21 | 1,000 | null | null | null | 25 | MEA | Self-healing Cu single-atom catalyst for high-performance electrocatalytic CO2 methanation | 10.1038/s41467-025-63274-9 |
CORR | C2H4 | 2025 | 91 | null | null | -1.43 | NHE | null | null | Disordered interfacial H2O promotes electrochemical C–C coupling | 10.1038/s41557-025-01859-z |
CO2RR | other | 2025 | null | null | null | null | null | null | null | Unveiling the reconstruction of copper bimetallic catalysts during CO2 electroreduction | 10.1038/s41929-025-01368-9 |
CO2RR | carbon | 2025 | 22.2 | null | null | null | null | null | null | Controlling hydrocarbon chain growth and degree of branching in CO2 electroreduction on fluorine-doped nickel catalysts | 10.1038/s41929-025-01370-1 |
CO2RR | C2+ | 2025 | null | null | null | -1 | RHE | 0.25 | null | Morphological and chemical state effects in pulsed CO2 electroreduction on Cu(100) unveiled by correlated spectro-microscopy | 10.1038/s41929-025-01387-6 |
CORR | other | 2025 | null | null | null | null | null | null | null | The critical role of local microenvironments | 10.1038/s41929-025-01395-6 |
CORR | other | 2025 | null | null | null | null | null | null | null | Resolving non-covalent interactions between surface hydroxyl on Cu and interfacial water in alkaline CO electroreduction | 10.1038/s41929-025-01396-5 |
CO2RR | other | 2025 | null | null | null | null | null | null | null | Linking surface modifications of Cu(100) to selectivity during dynamic CO2 electroreduction | 10.1038/s41929-025-01403-9 |
CO2RR | C2H4 | 2025 | 85 | 882.352941 | null | null | null | 1,500 | MEA | Electrocatalytic upcycling of high-pressure captured CO2 to ethylene | 10.1038/s41929-025-01411-9 |
CO2RR | C2H4 | 2025 | 70.6 | null | 1.89 | null | null | 145 | MEA | Ethylene electrosynthesis at low voltages enabled by dopant-induced modulation of the rate-determining step | 10.1038/s44160-025-00850-3 |
CORR | CH3CH2OH | 2025 | null | null | null | null | null | 200 | null | Electrosynthesis of ethanol via CO–CHx cross-coupling on copper alloy catalysts with engineered oxygen affinity | 10.1038/s44160-025-00868-7 |
CO2RR | other | 2025 | 91.7 | 482.006543 | null | -1.63 | RHE | 4,076 | null | Gallium modulated tin oxide for continuous production of formic acid via durable acidic CO2 electroreduction | 10.1126/sciadv.adw7326 |
CO2RR | HCOO | 2025 | 92 | 100 | null | -0.9 | RHE | 8 | flow cell | Integrating CO2 electroreduction with phenol hydrogenation on an oxygen-affinity tailored catalyst | 10.1126/sciadv.ady4981 |
CO2RR | CH3CH2OH | 2025 | 75 | 12.4 | null | -0.95 | RHE | 14 | H-cell | Interfacial Water on Ag/Ag 2 S Nanowires Enhancing the Ethanol Selectivity for CO2 Electroreduction | 10.1002/adma.202503010 |
CO2RR | CO | 2025 | 92.1 | 200 | null | -0.8 | RHE | 3,000 | flow cell | Fluorine–Mediated Interfacial Microenvironment for Boosting pH–Universal CO2 Reduction | 10.1002/adma.202509720 |
CO2RR | CO | 2025 | null | null | null | -0.8 | RHE | 0.027778 | null | Decoding Double Layer Dynamics for CO2 Electroreduction over Cu | 10.1002/anie.202423177 |
CO2RR | other | 2025 | 81.5 | 399.877301 | null | -0.69 | RHE | 10 | flow cell | Selective C 2 Electroproduction via Back Bonding in Asymmetric Copper‐Copper Motifs | 10.1002/anie.202501254 |
CO2RR | C2H4 | 2025 | 73.7 | 51.83175 | null | -1.4 | RHE | 200 | MEA | Cu 2 O Nano‐Homojunction for High‐Efficiency Electrocatalytic CO2 ‐to‐Ethylene Conversion | 10.1002/anie.202501554 |
CO2RR | C2+ | 2025 | 87 | 1,206.896552 | null | -1.05 | RHE | null | flow cell | In Situ Observation of Post‐CO Intermediates to Decode C─C Coupling Pathways in CO2 Electroreduction | 10.1002/anie.202502740 |
CO2RR | other | 2025 | 90 | 6.444444 | null | -0.8 | RHE | 20 | H-cell | Steric‐Dominated Intermediate Stabilization by Organic Cations Enables Highly Selective CO2 Electroreduction | 10.1002/anie.202504785 |
CO2RR | CO | 2025 | 99.4 | 497.384306 | null | -0.7 | RHE | 45 | flow cell | Modulating Spin State of Ni Single Atomic Center for High‐Performance Electrocatalytic Carbon Dioxide Reduction | 10.1002/anie.202506845 |
CO2RR | CO | 2025 | 96.9 | 224 | null | -0.9 | RHE | 140 | flow cell | Operando XAFS Deciphering Dynamic Evolution of Heteronuclear Cu–Ni From Atomic Sites to Atomic Clusters for Enhanced CO2 Electroreduction | 10.1002/anie.202508932 |
CO2RR | other | 2025 | null | null | null | null | null | null | null | Outside Front Cover: Boosting Current Density of Electrocatalytic CO2 Reduction using Metal‐Enzyme Hybrid Cathodes (Angew. Chem. Int. Ed. 30/2025) | 10.1002/anie.202513516 |
CO2RR | carbon | 2025 | null | null | null | null | null | null | null | Polarized Ni0-Niδ+ Catalysts Enable Asymmetric C–C Coupling for Long-Chain Hydrocarbons in Electrochemical CO2 Reduction | 10.1021/acscatal.4c07353 |
CO2RR | other | 2025 | null | null | null | null | null | null | null | Competitive CO2 Electrochemical Reduction and Hydrogen Evolution at Sn Electrode through Constant-Potential First-Principles Study and Microkinetic Modeling | 10.1021/acscatal.4c07565 |
CO2RR | other | 2025 | 12.13 | 100 | null | null | null | 5.2 | flow cell | Operando Benchtop NMR Quantifies Carbonation, Water Crossover, and Liquid Products for High-Current Electrochemical CO2 Reduction | 10.1021/acscatal.5c00355 |
CO2RR | C2+ | 2025 | 13.1 | null | null | -0.6 | RHE | 0.333333 | H-cell | Temperature Effects on the Surface CO Population during CO2 Electroreduction over Copper | 10.1021/acscatal.5c01173 |
CO2RR | C2+ | 2025 | null | null | null | null | null | null | null | Ionomer-Modulated Electrochemical Interface Leading to Improved Selectivity and Stability of Cu2O-Derived Catalysts for CO2 Electroreduction | 10.1021/acscatal.5c01614 |
CO2RR | HCOO | 2025 | 84.7 | 200 | null | null | null | 24 | flow cell | GDE Stability in CO2 Electroreduction to Formate: The Role of Ionomer Type and Loading | 10.1021/acscatal.5c02052 |
CO2RR | CO | 2025 | 99.3 | 300 | 2.05 | null | null | 90 | MEA | Structural Insights into Ni–Fe Layered Double Hydroxides as Anode Catalysts for Pairing CO2 Reduction and Ethylene Glycol Oxidation | 10.1021/acscatal.5c02291 |
CO2RR | other | 2025 | null | null | null | null | null | null | null | Unraveling the Impact of Common-Ion Effect on Acidic CO2 Electroreduction via Exploring Local pH Variation | 10.1021/acscatal.5c02485 |
CO2RR | C2+ | 2025 | 13 | 223.076923 | null | null | null | null | MEA | In-Plane Catalyst Loading Gradient Improves Electrochemical CO2 to C2+ Product Conversion | 10.1021/acscatal.5c02694 |
CO2RR | CO | 2025 | null | null | null | -3.4 | SHE | 0.5 | null | Carbon Dioxide Electroreduction on Gold without Metal or Organic Cations | 10.1021/acscatal.5c02785 |
both | CO | 2025 | 95 | 50 | null | -0.53 | RHE | 1 | flow cell | Electrocatalytic CO2 to CO and Methanol Conversion Using a Molecular Cobalt Corrole Complex | 10.1021/acscatal.5c02857 |
CO2RR | CO | 2025 | 90.1 | 110.987791 | null | null | null | null | MEA | Ionomer Side Chains Modulate Interfacial Microenvironments for Selective CO2 Electrolysis | 10.1021/acscatal.5c03583 |
CO2RR | CO | 2025 | 81.3 | 203.567036 | 3.5 | null | null | 24 | MEA | A Nature-Inspired Solution for Water Management in a Zero-Gap CO2 Electrolyzer | 10.1021/acsenergylett.5c01243 |
CO2RR | other | 2025 | null | 200 | null | null | null | null | MEA | Distribution of Speciation and Activity Across the Catalyst Layer during CO2 Electroreduction in Membrane Electrode Assembly | 10.1021/acsenergylett.5c01355 |
CORR | other | 2025 | 35 | 100 | -2.4 | null | null | 100 | MEA | Scaled CO Electroreduction to Alcohols | 10.1038/s41467-025-59180-9 |
CO2RR | CH3CH2OH | 2025 | 72.9 | 226 | null | -0.9 | RHE | 500 | flow cell | In situ stabilization of Cu+ for CO2 Electroreduction via Environmental-molecules-induced ZnO1-x shield | 10.1038/s41467-025-61189-z |
CO2RR | CO | 2025 | null | 100 | null | null | null | 4,500 | MEA | Acid-humidified CO2 gas input for stable electrochemical CO2 reduction reaction | 10.1126/science.adr3834 |
CO2RR | CH3OH | 2025 | 65.7 | 221.461187 | null | -0.8 | RHE | 48 | flow cell | Selective Electrosynthesis of Methanol from CO2 Over Cu/Cu 2 P 2 O 7 Via the Formate Pathway | 10.1002/adma.202501021 |
CO2RR | HCOOH | 2025 | 99 | 1,000 | null | null | null | null | null | Dual‐Site Activation for Efficient Acidic CO2 Electroreduction at Industrial‐Level Current Densities | 10.1002/adma.202503772 |
CO2RR | CH4 | 2025 | 31 | 200 | null | null | null | 3 | null | Polycondensation as a Universal Method for Preparing High‐Density Single‐Atom Catalyst Libraries | 10.1002/adma.202507627 |
CO2RR | CO | 2025 | 92 | null | null | -1.8 | Fc/Fc+ | 8 | null | Mechanistic Promiscuity in Cobalt‐Mediated CO2 Reduction Reaction: One‐ Versus Two‐Electron Reduction Process | 10.1002/anie.202503705 |
CO2RR | HCOO | 2025 | 80 | 300 | null | null | null | null | MEA | Efficient Bicarbonate Electrolysis to Formate Enabled via Ionomer Surface Modification in Cation Exchange Membrane Electrolyzers | 10.1002/anie.202504835 |
CO2RR | HCOO | 2025 | 97 | 210 | null | -1.1 | RHE | 200 | flow cell | Self‐Healing Indium Sulfide Catalyst for Efficient and Robust Electrocatalytic CO2 Conversion | 10.1002/anie.202505587 |
CORR | C2+ | 2025 | 71.4 | 2,500 | null | null | null | null | MEA | Selective CO Electroreduction to Multicarbon Oxygenates Over Atomically Dispersed Cu–Ag Sites in Alkaline Membrane Electrode Assembly Electrolyzer | 10.1002/anie.202507062 |
CO2RR | other | 2025 | 97.4 | 462.01232 | null | -0.56 | RHE | 110 | flow cell | Sn Catalysts with Build‐in [NCN] 2− as Proton Relay for Industrial‐Grade CO2 Reduction at Low Overpotential | 10.1002/anie.202507422 |
CO2RR | C2H4 | 2025 | 71 | 723.380282 | null | null | null | null | null | Covalent Elaboration of Confined Surfaces Steers C─C Coupling Pathway for Selective Electrochemical CO2 Reduction at Ampere‐Level | 10.1002/anie.202508366 |
CO2RR | other | 2025 | null | 700 | null | null | null | null | MEA | Operando Spectroscopic Insights into CO2 Reduction at Electrode/Polyelectrolyte Interfaces | 10.1002/anie.202509423 |
CO2RR | HCOO | 2025 | 98 | 1,000 | null | null | null | 100 | flow cell | Engineering Crystalline/Amorphous Interfaces for Enhanced CO2 Electroreduction | 10.1002/anie.202509502 |
CO2RR | CO | 2025 | 90 | 300 | null | null | null | null | null | Vacancy‐Defect Single‐Atom Catalysts for Tandem CO2 Electroreduction and Carbonylation Reactions from Flue Gas | 10.1002/anie.202510693 |
CO2RR | CO | 2025 | null | null | null | null | null | null | null | “Outside‐in” Design of Single‐Atom Catalysts: Linking Specific Peripheral Geometry to Defined CO2 Reduction Performance | 10.1002/anie.202511184 |
CO2RR | HCOO | 2025 | 95.5 | null | null | -0.9 | null | 310 | H-cell | Thermodynamic Miscibility‐Guided Engineering of Bismuth–Tin Janus Catalysts for Durable Electrocatalytic CO2 Reduction | 10.1002/anie.202512349 |
CO2RR | CO | 2025 | 95 | 385 | null | -1 | RHE | null | flow cell | Volcano‐Shaped Relationship Between Interfacial K+‐H2O Ratio and CO2 Reduction Activity in Tandem Electrocatalysts | 10.1002/anie.202514557 |
CO2RR | HCOOH | 2025 | 98.7 | 354.609929 | null | -1 | RHE | 230 | flow cell | Stabilizing Highly Active Metastable Bi (101) Facet via Covalent Organic Frameworks to Break Activity–Stability Trade‐off in CO2 ‐to‐HCOOH Electrocatalysis | 10.1002/anie.202515485 |
CO2RR | other | 2025 | null | null | null | null | null | null | null | Outside Back Cover: C 60 Fullerene as the Active Site for CO2 Electroreduction (Angew. Chem. Int. Ed. 39/2025) | 10.1002/anie.202517324 |
CO2RR | CH3OH | 2025 | 18 | 141.111111 | null | -1 | RHE | 4 | flow cell | Dual Molecular Catalyst-Based Tandem That Enables Electrocatalytic CO2−Formaldehyde−Methanol Cascade Conversion | 10.1021/jacs.5c00316 |
CO2RR | other | 2025 | null | 100 | null | null | null | null | null | Identification of Active Regions in a Catalyst Layer on a Gas Diffusion Electrode in the Electroreduction of CO2 | 10.1021/jacs.5c03143 |
CO2RR | CH4 | 2025 | 83.6 | 353.349282 | null | null | null | null | null | Copper–Carbon Bond Metal–Organic Frameworks for Highly Efficient and Stable CO2 Electrochemical Methanation | 10.1021/jacs.5c03158 |
CO2RR | C2+ | 2025 | null | 1,300 | null | null | null | 200 | flow cell | Constructing a Localized Buffer Interlayer to Elevate High-Rate CO2-to-C2+ Electrosynthesis | 10.1021/jacs.5c04129 |
CO2RR | other | 2025 | null | null | null | null | null | null | null | Orientational Geometry, Surface Density, and Binding Free Energy of Intermediates as Full Descriptors for Electrochemical CO2 Reduction at Metal Surfaces | 10.1021/jacs.5c04276 |
CO2RR | CO | 2025 | null | null | null | null | null | null | null | CO2 Conversion Enhancement by Hydrophobic Cation Additives Is Nearly Exclusive at the Undercoordinated Sites of Metal Surfaces | 10.1021/jacs.5c05352 |
CO2RR | HCOOH | 2025 | 26 | null | null | -1.2 | RHE | 6 | H-cell | Atomically Precise [Cu 23 H 4 (SC 7 H 7 ) 18 (PPh 3 ) 6 ] Nanocluster: Structural Integration of Johnson Solids through a Cu(0) Center and Electrocatalytic Functionality | 10.1021/jacs.5c05665 |
CORR | other | 2025 | 53.5 | null | null | -0.9 | RHE | null | null | Enhanced Nanoconfinement of Copper-Organic Interfaces within Phthalocyanine Frameworks for Selective Electroreduction of CO to Acetate | 10.1021/jacs.5c06660 |
CORR | other | 2025 | 77.8 | 695.758355 | null | null | null | null | MEA | Asymmetric C–C Coupling to Drive CO Conversion to Acetate | 10.1021/jacs.5c07400 |
CO2RR | C2+ | 2025 | 70.5 | 800 | null | null | null | 16 | flow cell | Electroreduction of diluted CO2 to multicarbon products with high carbon utilization at 800 mA cm–2 in strongly acidic media | 10.1038/s41467-025-59783-2 |
CO2RR | HCOO | 2025 | 90 | 1,210 | 2.5 | null | null | null | MEA | Ampere-level co-electrosynthesis of formate from CO2 reduction paired with formaldehyde dehydrogenation reactions | 10.1038/s41467-025-60008-9 |
CO2RR | CH4 | 2025 | 72 | 662.083333 | null | -1.52 | RHE | 10 | flow cell | Spontaneous water dissociation on intermetallic electride LaCu0.67Si1.33 enhances electrochemical methanization of CO2 | 10.1038/s41467-025-60353-9 |
CO2RR | CH3CH2OH | 2025 | 87.21 | 250.005733 | null | null | null | 300 | null | Highly efficient and stable ethanol electrosynthesis from carbon dioxide at −250 mA cm−2 | 10.1038/s41467-025-61132-2 |
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.