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文献详情 >Tunable CO_(2)enrichment on fu... 收藏

Tunable CO_(2)enrichment on functionalized Au surface for enhanced CO_(2)electroreduction

作     者:Huimin Wang Yuqing Fu Zhe-Ning Chen Wei Zhuang Minna Cao Rong Cao Huimin Wang;Yuqing Fu;Zhe-Ning Chen;Wei Zhuang;Minna Cao;Rong Cao

作者机构:State Key Laboratory of Structural ChemistryFujian Institute of Research on the Structure of MatterChinese Academy of SciencesFuzhou 350002China University of Chinese Academy of SciencesBeijing 100049China Fujian Science&Technology Innovation Laboratory for Optoelectronic Information of ChinaFuzhou 350108China 

出 版 物:《Nano Research》 (纳米研究(英文版))

年 卷 期:2023年第16卷第4期

页      面:4723-4728页

核心收录:

学科分类:07[理学] 070303[理学-有机化学] 0805[工学-材料科学与工程(可授工学、理学学位)] 0703[理学-化学] 0702[理学-物理学] 

基  金:the financial support from the National Key R&D Program of China(Nos.2017YFA0700103 and 2018YFA0704502) the National Natural Science Foundation of China(No.22033008),and Fujian Science&Technology Innovation Laboratory for Optoelectronic Information of China(No.2021ZZ103). 

主  题:molecular surface functionalization Au nanoparticles macrocyclic molecule tunable CO_(2)enrichment electrochemical CO_(2)reduction reaction 

摘      要:Electrochemical conversion of carbon dioxide(CO_(2))to higher-value products provides a forward-looking way to solve the problems of environmental pollution and energy shortage.However,the low solubility of CO_(2)in aqueous electrolytes,sluggish kinetics,and low selectivity hamper the efficient conversion of CO_(2).Here,we report a Au-based hybrid nanomaterial by modifying Au nanoparticles(NPs)with the macrocyclic molecule cucurbit[6]uril(Au@CB[6]).Au@CB[6]displays the optimal selectivity of CO,with the highest CO Faraday efficiency(FECO)reaching 99.50%at−0.6 V vs.reversible hydrogen electrode(RHE).The partial current density of CO formed by Au@CB[6]increases dramatically,as 3.18 mA/cm2 at−0.6 V,which is more than ten times as that of oleylamine-coated Au NPs(Au@OAm,0.31 mA/cm2).Operando electrochemical measurement combined with density functional theory(DFT)calculations reveals that CB[6]can gather CO_(2)and lead the increased local CO_(2)concentration near metal interface,which realizes significantly enhanced electrochemical CO_(2)reduction reaction(CO_(2)RR)performance.

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