Litcius/Paper detail

Insights on forming N,O-coordinated Cu single-atom catalysts for electrochemical reduction CO2 to methane

Yanming Cai, Jiaju Fu, Yang Zhou, Yu‐Chung Chang, Qianhao Min, Jun‐Jie Zhu, Yuehe Lin, Wenlei Zhu

2021Nature Communications510 citationsDOIOpen Access PDF

Abstract

Abstract Single-atom catalysts (SACs) are promising candidates to catalyze electrochemical CO 2 reduction (ECR) due to maximized atomic utilization. However, products are usually limited to CO instead of hydrocarbons or oxygenates due to unfavorable high energy barrier for further electron transfer on synthesized single atom catalytic sites. Here we report a novel partial-carbonization strategy to modify the electronic structures of center atoms on SACs for lowering the overall endothermic energy of key intermediates. A carbon-dots-based SAC margined with unique CuN 2 O 2 sites was synthesized for the first time. The introduction of oxygen ligands brings remarkably high Faradaic efficiency (78%) and selectivity (99% of ECR products) for electrochemical converting CO 2 to CH 4 with current density of 40 mA·cm -2 in aqueous electrolytes, surpassing most reported SACs which stop at two-electron reduction. Theoretical calculations further revealed that the high selectivity and activity on CuN 2 O 2 active sites are due to the proper elevated CH 4 and H 2 energy barrier and fine-tuned electronic structure of Cu active sites.

Topics & Concepts

ElectrochemistryCatalysisFaraday efficiencySelectivityChemistryElectron transferAtom (system on chip)Electrochemical reduction of carbon dioxideAqueous solutionCarbonizationNanotechnologyInorganic chemistryMaterials sciencePhotochemistryPhysical chemistryElectrodeOrganic chemistryCarbon monoxideAdsorptionEmbedded systemComputer scienceCO2 Reduction Techniques and CatalystsElectrocatalysts for Energy ConversionCovalent Organic Framework Applications
Insights on forming N,O-coordinated Cu single-atom catalysts for electrochemical reduction CO2 to methane | Litcius