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 | C2+ | 2025 | 82.7 | 400 | null | null | null | null | flow cell | Pulsed Electrolysis Promotes CO2 Electroreduction to Multicarbon Products by Suppressing Electrolyte Flooding | 10.1002/anie.202521745 |
CO2RR | CH3CH2OH | 2025 | 74.4 | 146 | null | -0.9 | RHE | 200 | flow cell | Interface‐Regulated Orbital Coupling Enables Nucleophilic Carbon Assembly Pathways in Electrochemical CO2 Conversion | 10.1002/anie.202525739 |
CO2RR | CO | 2025 | 90 | 9.76 | 3.2 | null | null | null | null | Integration of Redox‐Active Viologen Moiety into Bifunctional Covalent Organic Framework for Boosting Electrochemical CO2 Overall Reaction | 10.1002/anie.202523008 |
CO2RR | CO | 2025 | 98.6 | null | null | -1.12 | RHE | 250 | MEA | Differential Adsorption on Synergistic Cu─Cd Sites Enables Direct Hydrogenation in Acidic CO2 Electroreduction | 10.1002/anie.202522764 |
CO2RR | CO | 2025 | 85 | 1,000 | -4 | null | null | 100 | MEA | Concurrently Maximize CO2 RR and Minimize HER: A Dual Catalytic Active Site Approach for Ampere‐Level CO2 ‐to‐CO Electrolysis | 10.1002/anie.202521247 |
both | CO(NH2)2 | 2025 | 47.3 | null | null | null | null | 30 | null | Controllable C─N Coupling Toward Efficient Urea Electrosynthesis via Spin State Modulation on Fe Catalysts | 10.1002/anie.202512939 |
CO2RR | HCOO | 2026 | 96.1 | 600.208117 | null | -3.3 | RHE | 120 | flow cell | Designing Synergistic Lewis Acid‐Base Pairs in Compressed Bismuth‐Copper Oxide for Selective CO2 ‐to‐Formate Electrosynthesis | 10.1002/adma.202519866 |
CO2RR | CO | 2025 | 96 | 40 | null | -0.8 | RHE | 120 | MEA | In-situ grafting of cobalt phthalocyanine on gas diffusion electrodes enables ampere-level CO2 reduction | 10.1038/s41467-025-66808-3 |
CO2RR | HCOOH | 2025 | 95.1 | 1,000 | 1.8 | null | null | 500 | MEA | Small PdCx interstitial compound for efficient acidic CO2 electroreduction to formic acid | 10.1038/s41467-025-67949-1 |
CO2RR | CO | 2025 | null | null | null | null | null | null | null | Highly Acidic Second Coordination Spheres Promote In Situ Formation of Iron Phlorins Exhibiting Fast and Selective CO2 Reduction | 10.1021/jacs.5c16378 |
CO2RR | CO | 2025 | 88 | 100 | null | null | null | 1,100 | null | Sustainable and Efficient Bicarbonate Electrolysis via Enhanced CO2 and Cation Availability on a Gas–Water Dual-Permeable Electrode | 10.1021/jacs.5c20900 |
CO2RR | HCOOH | 2025 | 92 | null | null | -0.4 | RHE | 1 | flow cell | Mechanism of CO2 Electrolysis with Heterogenized Molecular Iridium Catalysts Deciphered Using Operando Spectroscopy | 10.1021/jacs.5c19250 |
CO2RR | HCOO | 2025 | null | null | null | null | null | null | null | Lattice Oxygen-Mediated Electrochemical Carbon Dioxide Reduction | 10.1021/jacs.5c17016 |
CO2RR | CO | 2025 | null | null | null | 0.6 | RHE | null | null | Hydrated Electrons Bypass the −1.9 V Activation Barrier in Electrochemical CO2 Reduction | 10.1021/jacs.5c15039 |
CO2RR | CO | 2025 | null | null | null | null | null | null | null | Interfacial Cation Arrangement Controls Electrocatalytic Kinetics in CO2 Reduction | 10.1021/jacs.5c18127 |
CO2RR | C2H4 | 2025 | 75.9 | 1,200 | null | -0.98 | RHE | 1,020 | flow cell | Thousand-hour salt precipitation-free CO2-to-ethylene electrosynthesis at high current densities | 10.1038/s41467-025-67719-z |
CO2RR | other | 2025 | null | null | null | null | null | null | null | Modulating Ammonium-Driven Hydrogen Evolution on Silver Electrodes in Amine-CO2 Capture Solutions | 10.1021/acsenergylett.5c03211 |
CORR | C2+ | 2025 | 86 | 200 | null | null | null | null | null | A Structure‐Defined Cu(I) Dual‐Atom Catalyst with a Cu 2 N 6 Motif in a Metal‐Organic Framework for CO Electroreduction | 10.1002/anie.202522583 |
CO2RR | HCOO | 2025 | 95 | 500 | null | -0.83 | RHE | 180 | flow cell | Spin‐Polarization in Rigid/Soft Layered Oxide Catalyst Regulates Key Intermediates for Efficient CO2 ‐to‐Formate Conversion | 10.1002/anie.202517481 |
CO2RR | CH4 | 2025 | 68.8 | 471.656977 | null | null | null | 30 | flow cell | σ-π dative bond stabilizing copper active site drives CO2 electrocatalysis to hydrocarbon | 10.1038/s41467-025-66140-w |
CO2RR | C2+ | 2025 | null | 940 | null | -1.08 | RHE | null | null | Enhanced CO2 electroreduction to multi-carbon products in strong acid induced by surface-adsorbed iodide ions | 10.1038/s41560-025-01924-4 |
CO2RR | CO | 2025 | null | null | null | -0.8 | RHE | null | null | Carbonate anions and radicals induce interfacial water ordering in CO2 electroreduction on gold | 10.1038/s41557-025-01977-8 |
CO2RR | other | 2025 | null | null | null | null | null | null | null | Revealing the impact of microenvironment on gold-catalysed CO2 electroreduction via Marcus–Hush–Chidsey kinetics | 10.1038/s41557-025-02010-8 |
CO2RR | C2H4 | 2025 | 68.7 | 793.304221 | null | null | null | 14 | flow cell | Securing interfacial cationic copper for acidic CO2 reduction to ethylene | 10.1038/s41467-025-65755-3 |
CO2RR | HCOO | 2025 | 95 | 250 | 1.71 | null | null | 8 | MEA | Unlocking cathodic potential dependent Pd deactivation for energy efficient CO2 electroreduction to formate | 10.1038/s41467-025-65255-4 |
both | C2+ | 2025 | 71.8 | 220 | null | null | null | 30 | MEA | Polymer-tethered pyridine tunes activities of the two distinct CO2 electroreduction sites on Cu | 10.1038/s41467-025-66673-0 |
CORR | other | 2025 | 50 | null | null | null | null | null | MEA | Active learning-guided catalyst design for selective acetate production in CO electroreduction | 10.1038/s41467-025-66493-2 |
both | other | 2025 | 62.7 | 23 | null | -1.5 | RHE | 100 | H-cell | Selective CO2 reduction to acetate via controlled sp2/sp3 carbon hybridization | 10.1038/s41467-025-65504-6 |
CO2RR | other | 2025 | 50 | 204 | 4.5 | null | null | 300 | MEA | Electrocatalytic CO2 reduction to ethylene in an acid-fed membrane electrode assembly at 10 A | 10.1038/s41467-025-65831-8 |
CO2RR | CO | 2025 | null | null | null | -1.5 | SHE | null | null | Electrochemical potential-driven water dynamics control CO2 electroreduction at the Ag/H2O interface | 10.1038/s41467-025-65630-1 |
CO2RR | CH3CH2OH | 2025 | 78.7 | 700 | -3.47 | null | null | 305 | MEA | Subsurface engineering for directional-selective CO2-to-ethanol electrocatalysis at industrial-level | 10.1038/s41467-025-67176-8 |
CO2RR | CH3OH | 2025 | null | null | null | -1 | RHE | null | null | Potential-modulated orbital interactions determine domino CO/methanol selectivity for CO2 electroreduction on cobalt phthalocyanine | 10.1126/sciadv.adz9944 |
CORR | C2+ | 2025 | 80 | 900 | 2.64 | null | null | 22 | MEA | Maintaining local alkalinity of CO-electroreduction full cell by silica-confined electrocatalysts in membrane electrode assembly | 10.1126/sciadv.aeb3478 |
CO2RR | other | 2025 | null | null | null | null | null | null | null | Mechanism- and Data-Driven Exploration of a Global Descriptor for CO2 Reduction | 10.1021/jacs.5c14012 |
CO2RR | CO | 2025 | 99 | null | null | -0.7 | RHE | null | null | Unraveling the Dynamic Low-Spin State Evolution of Single-Fe-Atom Sites for Efficient CO2 Electroreduction | 10.1021/jacs.5c13466 |
CO2RR | CH3CH2OH | 2025 | 50.5 | 1,000 | null | null | null | null | flow cell | Bidentate Piperazine Matrices Steering Interfacial Proton Flux toward Ampere-Level Ethanol Electrosynthesis in CO2 Electrolyzers | 10.1021/jacs.5c10975 |
CO2RR | CH4 | 2025 | 60 | null | null | null | null | null | null | Thermally Stabilized Hydrogenation Dynamics in Single-Atom Alloys Enables Selective CO2 Electroreduction | 10.1021/jacs.5c15278 |
CORR | other | 2025 | null | null | null | -0.35 | RHE | null | null | Role of Surface Hydroxyls in Atomic-Scale Copper Restructuring during CO Electroreduction | 10.1021/jacs.5c14516 |
CO2RR | CH4 | 2025 | 70 | 485 | null | -1.1 | RHE | null | flow cell | Promoted Electrochemical CO2 Methanation over Ultrastable Cu(II)-V O Pair Sites in Cu-CeO2 Catalyst: Water Activation and Intermediate Adsorption Tuning | 10.1021/jacs.5c09230 |
CORR | C2+ | 2025 | 83 | 703.614458 | 2.8 | null | null | null | null | Immobilized Organic Cations Augment CO Electroreduction via Molecular Vibration Modulation | 10.1021/jacs.5c13570 |
CORR | carbon | 2025 | 75.7 | null | null | null | null | 116 | flow cell | Selective CO Conversion to Multicarbon Alcohols via Balancing Adsorbate Configurations | 10.1021/jacs.5c15536 |
CO2RR | C2H4 | 2025 | 49.27 | null | null | null | null | null | H-cell | Atomic Eu Substitution in Cu 2 O Tailors C 1 and C 2+ Product Selectivity by Frustrated Deep Hydrogenation in Electrochemical CO2 Reduction | 10.1021/jacs.5c19360 |
CO2RR | other | 2025 | null | null | null | -0.6 | SHE | 1 | null | Constant-Potential MD with Neural Network Potentials Reveals Cation Effects on CO2 Reduction at Au-Water Interfaces | 10.1021/jacsau.5c01198 |
CO2RR | HCOO | 2025 | 95 | null | null | -1.3 | RHE | null | null | Anisotropic Yttrium Alloying in Bismuth for Facet-Specific Carbon Dioxide Reduction | 10.1021/acscatal.5c06373 |
CO2RR | CH3CH2OH | 2025 | 74.3 | 100 | null | -1 | RHE | null | null | Regulating the Oxophilicity of Cu Sites on Cu–Sn Heterostructures to Ultrahigh Selective Electroreduction of CO2 to Ethanol | 10.1021/acscatal.5c06340 |
CO2RR | other | 2025 | null | null | null | -1.02 | RHE | 20 | null | CuAg Alloy Catalyst for Modulating the Activity of C–N Coupling toward Acetamide and Urea Synthesis via Explicit pH-Dependent Water and Induced Ionic Liquid Cations Models | 10.1021/acscatal.5c05283 |
CO2RR | other | 2025 | null | null | null | null | null | null | null | Defect-Engineered MoS 2 Supported Transition Metal Clusters for Electrochemical Reactions | 10.1021/acscatal.5c05963 |
CO2RR | other | 2025 | null | null | null | null | null | null | null | Surface-Hydrogen Modulated Hydrogen Bond Network Steering Two-Electron Pathways in CO2 Electroreduction on Cu Surface | 10.1021/acscatal.5c06490 |
CO2RR | other | 2025 | 45 | null | null | -1.24 | RHE | 4 | H-cell | Restructuring of Benzimidazole-Based Copper Complexes during Electrochemical CO2 Reduction | 10.1021/acscatal.5c06128 |
CO2RR | CH4 | 2025 | 78 | 273 | null | null | null | null | flow cell | Constructing f-p-d Orbital Coupling Using Cu-Doped Frustrated Lewis Acid–Base Pairs in CeO2 to Boost CO2 Electroreduction | 10.1021/acscatal.5c05762 |
CORR | other | 2025 | 62 | 200 | null | null | null | 60 | MEA | High‐Concentration Alcohol Generation in Bipolar Membrane CO Electrolyzer | 10.1002/anie.202517470 |
CO2RR | HCOOH | 2025 | 90 | 650 | null | null | null | 500 | null | Metal‐Phase Protection Suppresses Bi Leaching for Durable Acidic CO2 Electroreduction to Formic Acid | 10.1002/anie.202517618 |
CO2RR | C2H4 | 2025 | 67.6 | 419.526627 | null | -1.6 | RHE | 10 | flow cell | Local Coordination‐Dependent CO2 Reduction Activity of Bimetallic Cu─Al Catalysts for Selective Ethylene/Ethanol Electrosynthesis | 10.1002/anie.202520291 |
CO2RR | HCOO | 2025 | null | null | null | null | null | null | null | Frontispiece: Energy‐Efficient Dual Formate Electrosynthesis via Coupled Formaldehyde Oxidation and CO2 Reduction at Ultra‐Low Cell Voltage | 10.1002/anie.202584701 |
CO2RR | CO | 2025 | 94 | null | null | null | null | null | null | Covalently Anchored Cationic Groups Tailor Electric Double Layer for Supporting‐Electrolyte‐Free CO2 Reduction in Acidic Media | 10.1002/anie.202518465 |
CO2RR | other | 2025 | 80 | 1,200 | null | null | null | null | null | Lattice Hydrogen Participation and Mass Transport Acceleration Improve CO2 Electroreduction to C 2 Products | 10.1002/anie.202518519 |
CO2RR | CO | 2025 | 99 | 200 | 2.38 | null | null | 35 | MEA | Metalloid Coordination Reinforcing Electronic Synergy in Dual‐Atom Sites for Large‐Scale CO2 Electrolysis | 10.1002/anie.202516353 |
CO2RR | CH4 | 2025 | 88.7 | 461 | null | -1.3 | RHE | null | null | Synergistic Effect of Mixed Cations in the Electrochemical Double Layer Enables Highly Efficient Electrochemical CO2 Methanation | 10.1002/anie.202520997 |
CO2RR | other | 2025 | null | null | null | null | null | null | MEA | Integrating Sorbents in CO2 Electroreduction: A Model System to Disentangle Layer Contributions in Membrane Electrode Assemblies | 10.1002/anie.202513104 |
CO2RR | CH3OH | 2025 | null | null | null | -0.8 | RHE | null | null | Support‐Induced Interfacial Effects Steer Methanol Selectivity in CO2 Electroreduction by Immobilized Cobalt Phthalocyanine | 10.1002/anie.202521683 |
CO2RR | C2+ | 2025 | 50.13 | 300 | null | null | null | null | null | Confining Reaction Intermediates in Oxide‐Derived Hollow Cu–Zn Bimetallic Catalyst Facilitates Selective Formation of C 2+ Alcohols from Electrochemical Carbon Dioxide Reduction | 10.1002/anie.202523150 |
CO2RR | C2H4 | 2025 | 79 | 200 | null | -1 | RHE | null | null | Insight into the Behavior of Interstitial Electrons in CuZn Alloy‐Functionalized Covalent Organic Framework Catalysts for Enhanced CO2 Electroreduction | 10.1002/anie.202517420 |
CO2RR | CH3CH2OH | 2025 | null | null | null | null | null | null | null | From Dopant Periodicity to Asymmetric Sites: Steering C─C Coupling in Single‐Atom Alloy Catalysts for Electrochemical CO2 Reduction | 10.1002/anie.202520426 |
CO2RR | other | 2025 | 78.8 | 559.64467 | null | -0.97 | RHE | 40 | flow cell | Pd‐Induced Cu Site Differentiation in Pd 1 Cu/Ag–N–C Catalyst Enables Asymmetric CO─CHO Coupling for Efficient CO2 ‐to‐C 2 H 4 Conversion | 10.1002/anie.202521173 |
CO2RR | other | 2025 | 51.5 | 439 | null | -1.774 | RHE | 10 | flow cell | Copper‐Silver Bimetallic Metal‐Covalent Organic Frameworks with Unique Intermediate Interlayer Transfer Effects for Enhanced Electrocatalytic CO2 to Ethylene Conversion | 10.1002/anie.202520496 |
CO2RR | C2+ | 2025 | 90.8 | 800 | null | null | null | null | null | Switching CO2 Electroreduction Pathways via Polyvinylpyrrolidone‐Mediated Water Configuration Control | 10.1002/anie.202523093 |
CO2RR | CO | 2025 | 93 | 500 | null | null | null | 100 | null | Cation Effect‐Engineered Electrocatalytic Interfaces Boost Pure‐Water CO2 Electrolysis with Optimized Ion Dynamics | 10.1002/anie.202516321 |
CO2RR | CH4 | 2025 | 73.7 | 200 | null | null | null | null | null | Elucidating the Donor/Acceptor Regulatory Mechanism for CO2 Electroreduction | 10.1002/adma.202512478 |
CO2RR | CO | 2025 | 97.8 | 2,050 | 1.5 | null | null | 500 | null | Trace Chlorine‐Induced Lattice Oxygen Activation for Enhanced High‐Temperature CO2 Electrolysis | 10.1002/adma.202518116 |
CO2RR | HCOO | 2025 | null | null | null | null | null | null | null | Atomic‐level Ag─Sn Coordination Engineering in Laser‐Synthesized Cu 6 Sn 5 Alloys for Energy‐Efficient Electroreduction CO2 to Formate | 10.1002/adma.202506697 |
CO2RR | C2H4 | 2025 | 66.7 | null | null | -1.69 | reversible hydrogen electrode | 52 | null | Stabilizing Cu 0 /Cu + Interfaces via High‐Entropy Electrochemical Potential Regulation Strategy for Enhanced CO2 ‐to‐Ethylene Conversion in Acidic Medium | 10.1002/adma.202510267 |
CO2RR | CH3OH | 2025 | 60.5 | null | null | null | null | 100 | null | Gridized Nanopolymer Catalysis with Atomically Dispersed Iron Achieves the Nearly 100% Selective Electrosynthesis of Methanol From CO2 | 10.1002/adma.202511233 |
CO2RR | other | 2025 | null | 1,630 | 1.5 | null | null | null | null | Single‐Atom Anchored on Perovskite With Strong Metal‐Oxide Interaction for Efficient High Temperature CO2 Electrolysis | 10.1002/adma.202512310 |
CO2RR | other | 2025 | 71 | 200 | null | null | null | 10 | MEA | Heterogenized Copper(II) Phenanthroline Catalysts for Electroreduction of CO2 to C 2 Compounds: Substitution on the Ligand Causes Structural Changes to the Molecular Framework and Stability Enhancement | 10.1002/adma.202513702 |
CO2RR | C2+ | 2025 | 82.04 | 688.90785 | null | -0.88 | RHE | null | null | 3D Gas Diffusion Layer with Dual‐Metal Sites for Enhanced CO2 Electrolysis to C 2+ Products | 10.1002/anie.202510167 |
CO2RR | CO | 2025 | 90 | null | null | -0.7 | RHE | null | H-cell | Built‐in Axial Electric Field‐Driven Electron‐Rich Monomolecular Co Sites for Promoting CO2 Electroreduction to CO Over Ultrawide Potential Window | 10.1002/anie.202511671 |
CORR | CH4 | 2025 | null | null | null | null | null | null | null | A‐Site Cation‐Regulated Operando Restructuring of Cu‐Based Perovskite Oxides for Selective Carbon Monoxide Electroreduction | 10.1002/anie.202513246 |
CO2RR | C2+ | 2025 | 92.4 | null | null | null | null | 200 | null | In‐Situ Probing CO Activation in Sulfur‐Enhanced Paired Electrocatalysis for CO2 ‐to‐C 2+ Conversion with Alcohol Oxidation | 10.1002/anie.202513840 |
CO2RR | CO | 2025 | 95 | 25.3 | null | -0.2 | RHE | null | null | Alternating Magnetic Field Induced Ultra‐Active Cu Sites in Trimetal‐Organic Frameworks for Low‐Overpotential CO2 Electroreduction | 10.1002/anie.202514255 |
CO2RR | CH4 | 2025 | 71.46 | null | null | null | null | 10 | MEA | Electrochemical Assembly of a Defective Cu Catalyst for High Current CO2 Electrolysis to Methane in a Zero‐Gap Electrolyzer | 10.1002/anie.202515396 |
CO2RR | HCOO | 2025 | 200 | null | -1.5 | null | null | 122 | flow cell | Enzymatic Flow Electrolyzer for CO2 and Waste Comproportionation to Formate and Its Use in Photocatalytic Alkene Hydrocarboxylation | 10.1002/anie.202515810 |
CO2RR | HCOO | 2025 | 90 | 800 | null | null | null | 100 | null | Rapid Fabrication of Defective CuInP 2 S 6 Nanosheets for Efficient CO2 ‐to‐Formate Conversion over Wide Current Densities | 10.1002/anie.202516041 |
CO2RR | CO | 2025 | 90 | null | null | null | null | null | null | Polymer Ligands with Quaternary Ammonium Binding Motifs on Metal Nanoparticles Enable Selective Ion Transport for CO2 Electroreduction | 10.1002/anie.202516071 |
CO2RR | C2+ | 2025 | 81 | 597.530864 | null | null | null | null | null | Selective Ion Transport Regulation Enables High Current Density CO2 ‐to‐C 2+ Conversion in Acid | 10.1002/anie.202516139 |
CO2RR | HCOO | 2025 | 90 | 222.222222 | null | null | null | 50 | null | Gas–Proton Microenvironment Modulation for Enhanced CO2 ‐to‐Formate Electroreduction | 10.1002/anie.202516163 |
CO2RR | CH4 | 2025 | 78.3 | 292.081737 | null | -1.1 | RHE | null | null | Cu–Mg Dual Single‐Atom Catalysts with CO Spillover for Efficient CO2 Electroreduction to CH4 | 10.1002/anie.202516184 |
CO2RR | HCOO | 2025 | null | null | 0.5 | null | null | null | null | Energy‐Efficient Dual Formate Electrosynthesis via Coupled Formaldehyde Oxidation and CO2 Reduction at Ultra‐Low Cell Voltage | 10.1002/anie.202516232 |
CO2RR | CO | 2025 | 98 | 750 | null | null | null | 100 | null | Topological Duality: Constructing High‐Nuclearity Metal Clusters with Unleashed Active Sites for Efficient and Durable CO2 Electroreduction | 10.1002/anie.202516704 |
CO2RR | CO | 2025 | 96 | 800 | null | null | null | 118 | MEA | Tuning Microscopic Water Orientation in Nickel Single‐Atom Catalyst for Commercial‐Scale CO2 Electrolysis to CO | 10.1002/anie.202516799 |
CO2RR | CH3OH | 2025 | 40 | null | null | null | null | null | null | Strengthening Intermediate Adsorption on a Cobalt Phthalocyanine Assembly by Polymeric Modification for Electrochemical Carbon Dioxide Reduction into Methanol | 10.1002/anie.202517033 |
CO2RR | other | 2025 | 84.2 | 1,000 | 3.1 | null | null | 110 | flow cell | Built‐In Electric Field Triggered Interfacial Water Activation for Industrial‐Level Electrosynthesis of Ethylene from CO2 | 10.1002/anie.202517221 |
CO2RR | CO | 2025 | null | null | null | null | null | null | null | Integrative Ni 1 –P x Catalytic Pairs for Low‐Concentration CO2 Electroreduction | 10.1002/anie.202518003 |
CO2RR | C2+ | 2025 | 80 | 470.25 | null | -1.7 | RHE | null | MEA | Rare‐Earth Regulated Bond Polarizability in Layered Cuprates for Promoted Surface Reconstruction Toward C 2+ Electrosynthesis | 10.1002/anie.202518058 |
CO2RR | CO | 2025 | 95 | null | null | -0.8 | RHE | null | null | Ultrasmall Nickel Nanoclusters Accelerating Protonation for Efficient CO2 Electroreduction towards CO | 10.1002/anie.202518107 |
CO2RR | C2+ | 2025 | 59.1 | null | null | null | null | null | null | Atomic Coordination Engineering of Sub‐Nanometer Cu Clusters for Selective CO2 Electroreduction to Multi‐Carbon Alcohols | 10.1002/anie.202518377 |
CO2RR | other | 2025 | null | null | null | null | null | null | null | Spatially‐Directed C─C Coupling inside Three‐dimensional Metal‐organic Frameworks for CO2 Electroreduction to C 2 Products | 10.1002/anie.202518398 |
CO2RR | other | 2025 | null | null | null | null | null | null | null | Beyond Local Coordination: How Global Structure Engineers the Selectivity of Single Atom Catalysts for CO2 Reduction | 10.1002/anie.202519826 |
CO2RR | CO | 2025 | null | null | null | -0.944 | SHE | null | null | Substituent‐Generated Electric Fields and Ligand Non‐Innocence Drive the Record‐High Efficiency of Iron Tetraphenylporphyrin Catalysts for CO2 ‐to‐CO Conversion | 10.1002/anie.202520907 |
CO2RR | HCOO | 2025 | null | null | null | null | null | null | null | Frontispiece: Cation Exchange‐Driven Grain Boundary‐Rich Nanorings as Efficient CO2 Reduction Electrocatalysts | 10.1002/anie.202583901 |
CO2RR | CO | 2025 | 95 | null | null | null | null | 3.5 | null | Pyrene as a Redox Partner for CO2 Electroreduction Catalyzed by a Zinc Cyclam–Pyrene Complex | 10.1021/acscatal.5c03305 |
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.