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values | title large_stringlengths 24 201 | doi large_stringlengths 17 31 |
|---|---|---|---|---|---|---|---|---|---|---|---|
CO2RR | CO | 2025 | null | null | null | null | null | null | null | Machine Learning–Driven Mapping of the Surface Structure and Activity Landscape in Cu–Zn Catalysts for CO2 Electroreduction | 10.1021/acscatal.5c03337 |
CO2RR | other | 2025 | null | null | null | null | null | null | null | Screening Nitrogen-Coordinated Single Atom Catalysts on Armchair Carbon Nanotubes for Enhanced Electrochemical CO2 Reduction to C1 Products | 10.1021/acscatal.5c03565 |
CO2RR | other | 2025 | null | 10 | null | null | null | null | null | Electrodeposited Films of Manganese–Bipyridine Complexes for Aqueous Electrochemical CO2 Reduction | 10.1021/acscatal.5c03678 |
CO2RR | HCOO | 2025 | null | null | null | -0.1 | RHE | null | null | Mechanistic Insights into the Electroreduction of Carbon Dioxide to Formate on Palladium | 10.1021/acscatal.5c04052 |
CO2RR | CO | 2025 | 89.6 | 29.4 | null | -1.9 | Ag/AgCl | 10 | flow cell | Using Sorbitol as Electrolyte Additive to Control Interfacial Environments in Electrochemical CO2 Reduction on Silver | 10.1021/acscatal.5c04382 |
CO2RR | CO | 2025 | null | null | null | null | null | null | null | How Cation Size Modulates the Anion Effect in CO2 Electroreduction: Insights from Multiscale Modeling of Electrochemical Interfaces | 10.1021/acscatal.5c04787 |
CO2RR | CO | 2025 | 100 | null | null | null | null | null | null | The Golden Atomic Ratio in Binary Nanoalloys for Enhanced CO2 Electroreduction: Dual-Metal Synergy of AgPd | 10.1021/acscatal.5c04933 |
CO2RR | other | 2025 | 86 | null | null | -1 | Fc/Fc+ | 3 | null | Tuning CO2 RR Pathways through Water Control in Ionic Liquids | 10.1021/acscatal.5c04941 |
CO2RR | C2+ | 2025 | 75.4 | null | null | null | null | null | null | Tuning *CO–*CHO Dimerization via Twisted Electron Localization of Asymmetrically Coordinated Cu–Cu Dual Sites by P and N Scatterings Boosts CO2 Electroreduction | 10.1021/acscatal.5c04995 |
CO2RR | HCOO | 2025 | 82 | 400 | null | null | null | 50 | flow cell | Efficient and Selective CO2 -to-Formate Conversion Using Waste Plastic-Derived Carbon Nanotube-Copper Catalysts | 10.1021/acscatal.5c05083 |
CO2RR | other | 2025 | null | 4,230 | 1.8 | null | null | 500 | null | Polarizability-Induced Oxygen Vacancies and Electronic Exchange Synergy Effect in Cs-Doped SrFe0.9Nb0.1O3−δ for Efficient CO2 Electrolysis in Symmetrical Cells | 10.1021/acscatal.5c05626 |
CO2RR | HCOO | 2025 | 85.4 | 2,997.65808 | null | null | null | 280 | MEA | Rational Design of p-Block Metal-Doped Bismuth via Dual Orbital Hybridizations for Ampere-Level CO2 -to-Formate Electrosynthesis and Zn–CO2 Batteries | 10.1021/acscatal.5c05753 |
CO2RR | C2+ | 2025 | 51.6 | 700 | null | null | null | null | null | Steering Acidic CO2 Electroreduction to Multicarbon Alcohols with High Efficiency and Selectivity over Calcium-Induced Bicrystalline Cu Architecture | 10.1021/acscatal.5c05968 |
CO2RR | HCOOH | 2025 | 81 | 100 | null | null | null | 90 | null | High-Pressure Electrochemical CO2 Capture and Reduction to Formic Acid | 10.1021/acsenergylett.5c02165 |
CO2RR | C2+ | 2025 | null | 150 | 3.9 | null | null | 25 | flow cell | Hybrid Electrolyzer Configuration for Efficient CO2 Electrolysis | 10.1021/acsenergylett.5c02368 |
CO2RR | CO | 2025 | 93 | 700 | null | null | null | 42 | null | Molecular Catalyst Enables CO2 Electroreduction at 650 mA/cm2 CO Partial Current Density | 10.1021/acsenergylett.5c02397 |
CO2RR | CO | 2025 | null | null | null | null | null | null | null | Optimizing CO2 -Loaded Aqueous Amine Solutions for Higher Electrocatalytic CO2 Reduction Activity | 10.1021/jacs.5c07783 |
CORR | other | 2025 | 47 | 100 | null | null | null | 60 | null | ZnSnAuBiCuO-Derived Electrocatalysts Rich in Grain Boundaries for CO Reduction to n -Propanol | 10.1021/jacs.5c09652 |
CO2RR | other | 2025 | null | null | null | null | null | null | null | Cation Competition Experiments during Electrochemical CO2 Reduction As a Probe of the Film-Modified Copper Microenvironment | 10.1021/jacs.5c10155 |
CO2RR | C2+ | 2025 | 91.9 | 250 | null | null | null | null | null | Enhancing C 2+ Product Faradaic Efficiency in CO2 Reduction Using Fluorine-Stabilized Superhydrophobic Copper (δ+) | 10.1021/jacs.5c10233 |
CO2RR | CO | 2025 | 64 | null | null | -2.2 | Fc/Fc+ | 0.033333 | null | Electrochemical Deposition of an N -Heterocyclic Carbene (NHC) Functionalized CO2 Reduction Catalyst on Au Electrodes | 10.1021/jacs.5c11267 |
both | C2H4 | 2025 | 42 | 1,261.904762 | null | -0.65 | RHE | 10 | flow cell | Cation Dehydration by Surface-Grafted Phenyl Groups for Enhanced C2+ Production in Cu-Catalyzed Electrochemical CO2 Reduction | 10.1021/jacs.5c11313 |
CO2RR | CO | 2025 | 98 | 100 | null | null | null | 500 | null | Flexibility-Induced Robustness in Molecular Catalysts for Electrocatalytic CO2 Reduction | 10.1021/jacs.5c11449 |
CO2RR | HCOO | 2025 | 92.4 | 1,200 | 2.91 | null | null | 100 | flow cell | Upcycling CO2 and PET Waste: Ampere-Level Formate Electrosynthesis in an Integrated Electrolyzer | 10.1021/jacs.5c11708 |
CO2RR | CO | 2025 | 93 | null | null | null | null | 90 | null | Control of CO2 Electrocatalysis via Modularly Customizable Graphdiyne | 10.1021/jacs.5c11774 |
CO2RR | carbon | 2025 | null | 0.1 | null | null | null | null | null | Direct Electrosynthesis of C 3+ Hydrocarbons from CO2 via Size-Controlled Nickel Nanoislands on a Carbon Support | 10.1021/jacs.5c12052 |
CO2RR | CO | 2025 | null | null | null | null | null | null | null | Uncovering the True Active Sites in Ni–N–C Catalysts for CO2 Electroreduction | 10.1021/jacs.5c12847 |
CO2RR | HCOO | 2025 | 88 | null | null | null | null | null | null | Insights into Reactive Carbon Capture through Heterogeneously Catalyzed Electrochemical Reduction of an Imidazolium Carboxylate | 10.1021/jacs.5c13415 |
CO2RR | CH4 | 2025 | null | null | null | null | null | null | null | Manipulating the Coordination Environment of Cu Single Atoms via Regulating ZrO2 Support Crystal Phases for Enhanced CO2 Electroreduction | 10.1021/jacs.5c13661 |
CO2RR | CH3CH2OH | 2025 | 52 | 400 | null | null | null | null | null | Y-Doped CuS Promotes Selective Electroreduction of CO2 to Ethanol | 10.1021/jacs.5c13850 |
CO2RR | other | 2025 | null | null | null | null | null | null | null | Understanding Electrochemical CO2 Reduction Selectivity of Cu Binary Alloys from Electronic Structure Descriptors | 10.1021/jacs.5c14093 |
CO2RR | C2+ | 2025 | null | null | null | null | null | null | null | Dynamic Evolution from Single-Atom Catalysts to Active Nanograins for CO2 Reduction | 10.1021/jacs.5c14123 |
CO2RR | other | 2025 | null | null | null | null | null | null | MEA | In Situ Investigation of Cation Transport across Anion Exchange Membranes in Membrane Electrode Assembly Electrolyzers | 10.1021/jacs.5c16113 |
CO2RR | other | 2025 | 82 | null | null | -2 | Fe(C5H5)2+/0 | 4 | null | Integrated CO2 Capture and Conversion to Formate with a Molecular Platinum Bis(diphosphine) Electrocatalyst | 10.1021/jacsau.5c00801 |
CO2RR | CO | 2025 | 98 | 500 | null | null | null | 40 | flow cell | Specific construction of asymmetric carbon-nickel-chlorine single-atom sites via carbon vacancy engineering for efficient CO2 electroreduction | 10.1038/s41467-025-62287-8 |
CORR | other | 2025 | 50 | 200 | 2.3 | null | null | 700 | null | Diaphragm-based carbon monoxide electrolyzers for multicarbon production under alkaline conditions | 10.1038/s41467-025-63004-1 |
CO2RR | other | 2025 | 55.3 | 537.070524 | null | -1.6 | RHE | 40 | flow cell | A chelate to break diffusion limits on Helmholtz plane for CO2 electroreduction to ethanol | 10.1038/s41467-025-63009-w |
CO2RR | C2+ | 2025 | 83.5 | 919.760479 | 3.4 | null | null | 96 | flow cell | Localized mass transport channels for electro-upgrade of dilute CO2 toward high-yield C2+ products | 10.1038/s41467-025-63178-8 |
CO2RR | C2H4 | 2025 | 61.2 | 500 | null | null | null | 150 | flow cell | Long-term stable acidic electroreduction of CO2 to C2 products at industrial current density using passivated copper | 10.1038/s41467-025-63318-0 |
CO2RR | CO | 2025 | 80 | 100 | 3.17 | null | null | 200 | null | Interface engineering of single-molecular heterojunction catalysts for CO2 electroreduction in strong acid medium | 10.1038/s41467-025-63722-6 |
CO2RR | CH4 | 2025 | 70 | 434.142857 | null | -0.96 | RHE | 20 | flow cell | Tuning binding strength between single metal atoms and supports enhances electrochemical CO2 methanation | 10.1038/s41467-025-63781-9 |
CO2RR | HCOO | 2025 | 90 | 400 | 2.66 | null | null | 313 | flow cell | Membrane-free CO2 electrolyzer design for economically efficient formic acid electro-synthesis | 10.1038/s41467-025-64306-0 |
CO2RR | CO | 2025 | 85 | 400 | 3.3 | null | null | 200 | MEA | Porous membranes enable selective and stable zero-gap acidic CO2 electrolysers | 10.1038/s41467-025-64342-w |
CO2RR | HCOO | 2025 | 90 | 66.222222 | null | -0.6 | RHE | 96 | flow cell | Charge redistribution dynamics in chalcogenide-stabilized cuprous electrocatalysts unleash ampere-scale partial current toward formate production | 10.1038/s41467-025-64472-1 |
CO2RR | other | 2025 | 118.7 | 800 | 4.9 | null | null | 265 | flow cell | Bipolar ethylene electrosynthesis from CO2 and biowaste acid with total faradaic efficiency over 118% | 10.1038/s41467-025-64649-8 |
both | other | 2025 | 53 | null | null | null | null | null | null | Co-electroreduction of CO and glyoxal promotes C3 products | 10.1038/s41557-025-01985-8 |
CORR | C2H4 | 2025 | null | null | null | null | null | null | null | Swapping membranes for separators | 10.1038/s41560-025-01833-6 |
CORR | C2+ | 2025 | null | 200 | 1.95 | null | null | 250 | null | CO electrolysers with 51% energy efficiency towards C2+ using porous separators | 10.1038/s41560-025-01846-1 |
CO2RR | CO | 2025 | null | null | null | null | null | null | null | Tandem amine scrubbing and CO2 electrolysis via direct piperazine carbamate reduction | 10.1038/s41560-025-01869-8 |
CO2RR | CH4 | 2025 | 60 | 200 | 4 | null | null | 500 | null | Recoverable operation strategy for selective and stable electrochemical carbon dioxide reduction to methane | 10.1038/s41560-025-01883-w |
both | other | 2025 | null | 200 | 1.95 | null | null | null | null | Voltage distribution within carbon dioxide reduction electrolysers | 10.1038/s41893-025-01643-4 |
CO2RR | other | 2025 | null | null | null | null | null | null | null | Microenvironment effects in electrochemical CO2 reduction from first-principles multiscale modelling | 10.1038/s41929-025-01399-2 |
CO2RR | HCOOH | 2025 | null | 800 | null | -1.37 | null | 536 | null | Efficient and scalable upcycling of oceanic carbon sources into bioplastic monomers | 10.1038/s41929-025-01416-4 |
CO2RR | CO | 2025 | null | null | null | null | null | null | null | Determining CO adsorption free energies on CO2 electroreduction active sites through kinetic analysis | 10.1038/s41929-025-01427-1 |
CO2RR | other | 2025 | 74.3 | 600 | null | null | null | null | null | Model thiophene-decorated nickel porphyrins for tandem CO2 reduction | 10.1038/s44160-025-00903-7 |
CO2RR | C2H4 | 2025 | 50.9 | 180 | -3.1 | null | null | 15 | MEA | Strain-optimized copper dual-atom sites for selective electroreduction of carbon dioxide to ethylene | 10.1126/sciadv.ads0609 |
CORR | other | 2025 | 35 | 100 | 2.15 | null | null | 330 | MEA | Copper Catalysts Inherit and Retain Precatalyst Morphology in Extended CO Electroreduction to n ‐Propanol | 10.1002/adma.202508900 |
both | CO | 2025 | 99.99 | 500 | null | -0.6 | RHE | 30 | MEA | Switching off Competing Hydrogen Formation in CO2 Electroreduction via Substrate Defect Engineering | 10.1002/adma.202510192 |
CO2RR | CH3OH | 2025 | null | null | null | null | null | null | null | Efficient Electronic‐Structure Methods Toward Catalyst Screening: Projection‐Based Embedding Theory for CO2 Reduction Reaction Intermediates | 10.1002/anie.202503418 |
CO2RR | C2+ | 2025 | 81 | null | null | -0.45 | null | null | null | Tailored Selectivity for CO and C2+ in CO2 Reduction: Insights into the Dynamic Evolution of Electrocatalysts | 10.1002/anie.202506184 |
CORR | CH4 | 2025 | null | null | null | -0.67 | RHE | null | null | Insight into the Carbon Monoxide Reduction Reaction on Cu(111) from Operando Electrochemical X‐ray Photoelectron Spectroscopy | 10.1002/anie.202506402 |
CO2RR | CH3CH2OH | 2025 | 50 | 700 | null | null | null | null | null | Selective and Energy Efficient Electrocatalytic CO2 ‐to‐Ethanol Conversion through Anion Modulation | 10.1002/anie.202506867 |
CO2RR | other | 2025 | null | null | null | null | null | null | null | Exposure of Au Atom on Au(111) in Metal Nanoclusters for pH‐Universal Electrocatalysis | 10.1002/anie.202508459 |
CO2RR | other | 2025 | 70 | 200 | null | null | null | 8 | flow cell | Molecular Scale Interfacial Water Management Switching Reaction Pathway of Carbon Dioxide Electroreduction | 10.1002/anie.202508801 |
CO2RR | C2H4 | 2025 | 39 | 150 | null | null | null | 160 | MEA | Selective Electrochemical Production of Ethylene from Bicarbonate Solution | 10.1002/anie.202509975 |
CO2RR | HCOO | 2025 | 96.48 | null | null | -0.5 | RHE | 150 | null | Selective Sieving Effect of Multi‐Atomic Bismuth Interfaces for Efficient Formate Electrosynthesis and Evolution at Industrial Current Density | 10.1002/anie.202510206 |
CO2RR | C2H4 | 2025 | 51.7 | 198.839458 | null | -1.1 | RHE | null | flow cell | Enhanced Active Hydrogen Absorption and Stabilized Cu(I) Species Over Cu‐O‐Ce Bridges Boosting Electrocatalytic CO2 Reduction to Ethylene | 10.1002/anie.202510383 |
CO2RR | HCOO | 2025 | 92.4 | 105.30303 | null | -0.8 | RHE | null | H-cell | S‐doped Ag–Sn Alloy Hollow Microbox for High‐Performance CO2 Electroreduction to Formate | 10.1002/anie.202510743 |
CO2RR | HCOO | 2025 | 98.9 | 206.875632 | null | -1 | RHE | 150 | MEA | Cation Exchange‐Driven Grain Boundary‐Rich Nanorings as Efficient CO2 Reduction Electrocatalysts | 10.1002/anie.202510973 |
CO2RR | HCOOH | 2025 | 95.7 | 213.3 | null | -1.8 | RHE | 20 | flow cell | Low‐Coordination Indium Single‐Atom Sites Anchored on a Metal‐Organic Framework Single‐Layer Boosts Electroreduction of CO2 Into Formic Acid | 10.1002/anie.202511132 |
both | CH3CH2OH | 2025 | 49.27 | 137.893241 | null | -1.3 | RHE | 18 | flow cell | Ag⁺‐Mediated Structural Reconstruction of a Metastable Cu 35 Cluster Toward Cu–Ag Heterometallic Architectures for Superior Electrocatalytic CO2 ‐to‐Ethanol Conversion | 10.1002/anie.202511232 |
CO2RR | CO | 2025 | 98.4 | 207.317073 | null | -0.54 | RHE | 50 | null | Dual Co Sites in n─n Type Heterojunction Enable Selective Electrochemical Co‐Valorization of HMF and CO2 | 10.1002/anie.202511448 |
CO2RR | CH4 | 2025 | 80.5 | 400 | null | null | null | null | null | Ordered Copper Triangular Atomic Sites for Industrial‐Grade Electromethanation of CO2 via Self‐Regulated Adsorption of Reactants | 10.1002/anie.202511459 |
CO2RR | C2+ | 2025 | 85 | 400 | null | null | null | null | null | Asymmetric, Corner‐Sharing CuO 5 and CuO 6 Motifs in Cu‐Based Metallic Perovskite Oxides Boosting Asymmetric C─C Coupling for CO2 Electroreduction to C 2+ | 10.1002/anie.202511546 |
CO2RR | C2+ | 2025 | 89.2 | 620.964126 | null | -1.8 | RHE | 10 | flow cell | Behavior Regulation of *CO over Self‐Evolution Tandem Catalysts Under Tuned Interfacial Electric Field Boosts CO2 Electroreduction | 10.1002/anie.202511704 |
CO2RR | CO | 2025 | 85.5 | 17 | null | -1.1 | RHE | 11 | null | C 60 Fullerene as the Active Site for CO2 Electroreduction | 10.1002/anie.202511924 |
CO2RR | HCOOH | 2025 | 94.8 | 10 | 2.4 | null | null | 20 | null | Harnessing Electrocatalytic Coupling of Carbon Dioxide and Methanol for High‐Efficiency Formic Acid Production | 10.1002/anie.202512078 |
CO2RR | CO | 2025 | 94.4 | null | null | -1.5 | null | 20 | null | Highly Efficient CO2 Electroreduction in Artificial Seawater Electrolyte Catalyzed by Strong‐Acid/Base‐Resistant MOF | 10.1002/anie.202512100 |
CO2RR | CO | 2025 | 90 | null | null | null | null | null | null | Host–Guest Metal Interaction in Cu‐In Single Atom Alloy Switching Electrocatalytic CO2 Reduction Pathway | 10.1002/anie.202512970 |
CO2RR | HCOO | 2025 | 93 | null | null | null | null | 33.333333 | flow cell | A New Phase Indium Tin Oxide (ITO) Activated Selective CO2 Reduction into Formate for Underwater Antifouling Glass | 10.1002/anie.202513052 |
CO2RR | CO | 2025 | 70 | 100 | 2.82 | null | null | 20 | MEA | From Flue Gas to Syngas: Composite Electrode Based on Ionic Liquid and Microporous Polymer for MEA‐Based CO2 Electrolysis | 10.1002/anie.202513103 |
CO2RR | C2+ | 2025 | 84 | 200 | null | null | null | 40 | flow cell | Interfacial Diffusion‐Reaction Coupling Strategy for CO2 Reduction on Copper Surface in Acidic Medium | 10.1002/anie.202513306 |
CO2RR | CO | 2025 | 99 | null | null | null | null | null | flow cell | Multifunctional Binding Interface Drives Near‐Unity CO Selectivity in Acidic CO2 Electrolysis | 10.1002/anie.202514111 |
CO2RR | HCOO | 2025 | 83.5 | 60 | null | null | null | null | null | Improving Faradaic Efficiency for Conversion of Bicarbonate to Formate Using Indium–Bismuth Alloy Electrocatalysts | 10.1021/acscatal.5c00215 |
CO2RR | CO | 2025 | 99 | 180 | null | -0.19 | RHE | null | null | Efficient CO2 Electroreduction to CO on Chiral Nanostructured Au Films | 10.1021/acscatal.5c01589 |
CO2RR | C2+ | 2025 | 85 | 352.5 | null | null | null | null | null | Theory-Guided Modification of Ionic Liquid on Cu2O Promotes Asymmetric C–C Coupling for CO2 Conversion | 10.1021/acscatal.5c02494 |
CO2RR | CO | 2025 | null | null | null | null | null | null | null | Ultradiluted (Alkyl)ammonium Enables Acidic CO2 Electroreduction | 10.1021/acscatal.5c02661 |
both | C2H4 | 2025 | null | null | null | -0.6 | RHE | null | null | Machine Learning-Accelerated First-Principles Molecular Dynamics Reveals C–C Coupling Mechanisms toward Ethylene on Cu(100) | 10.1021/acscatal.5c02726 |
CO2RR | other | 2025 | null | 17 | null | -0.35 | RHE | null | null | A Combined Density Functional Theory and Microkinetics Simulation Study of Electrochemical CO2 Reduction on Ceria-Supported Bismuth | 10.1021/acscatal.5c02774 |
CORR | other | 2025 | 28 | null | null | null | null | null | null | Pressure-Mediated Cu Fragmentation and C1–C2 Intermediate Coupling in Electrocatalytic CO Reduction | 10.1021/acscatal.5c03184 |
CO2RR | other | 2025 | null | null | null | null | null | null | null | Mechanism of Potential-Dependent CO2 Reduction and H2 Evolution during Electrocatalytic CO2 Process | 10.1021/acscatal.5c03215 |
CO2RR | C2+ | 2025 | 80.3 | null | null | null | null | null | flow cell | Engineering Interlayer Electric Fields to Enhance K+ Insertion for Efficient Acidic CO2 Reduction | 10.1021/acscatal.5c03353 |
CO2RR | CO | 2025 | null | null | null | null | null | null | null | Redox Mediated Molecular Chemical Catalysis of Electrochemical Reactions: A Co-Catalytic Boosting Effect in CO2 Electroreduction Catalyzed by an Iron Porphyrin | 10.1021/acscatal.5c03381 |
CO2RR | HCOOH | 2025 | 91.2 | 1,000 | null | null | null | 80 | null | In3+-Induced In–O–Sn Superexchange and Oxygen Vacancies Synergistically Boosting Acidic CO2-to-HCOOH Electrolysis at Ampere-Current Levels over Sn-Based Perovskite Oxides | 10.1021/acscatal.5c03473 |
CO2RR | other | 2025 | null | null | null | -1.15 | RHE | 24 | null | Antireconstruction Cu Nanowire Catalysts Enabled by SiO2 Encapsulation for Durable Electrochemical CO2 Reduction | 10.1021/acscatal.5c03539 |
CO2RR | C2+ | 2025 | null | null | null | null | null | null | null | Reconstruction-Dependent Coordination Descriptor for Selectivity toward C2+ Products of CO2 Electroreduction over Cu Catalysts | 10.1021/acscatal.5c03702 |
CO2RR | CO | 2025 | null | null | null | null | null | null | null | Revealing the Role of the Electrical Double Layer in Electrochemical CO2 Reduction | 10.1021/acscatal.5c03725 |
both | carbon | 2025 | null | null | null | null | null | null | null | Cation Effect on the Dynamics of Intermediates in Electroreduction of Carbon Dioxide in Acids | 10.1021/acscatal.5c03983 |
CO2RR | other | 2025 | null | null | null | null | null | null | null | Modifying the Rate of Rhenium(Diimine)-Mediated Electrochemical Carbon Dioxide Reduction via the Addition of a Redox-Active Functional Group Near the Active Site | 10.1021/acscatal.5c04063 |
CO2RR | CO | 2025 | 91.25 | 185.052055 | null | -2.4 | SHE | null | null | Tailoring the Au/Cu Microenvironment for Enhanced CO2 Electroreduction to CO in a Three-Membrane Electrolyzer with Na2CO3 and Cl2 Byproducts | 10.1021/acscatal.5c04500 |
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.