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典型文献
Modulating electrochemical CO2 reduction at interfaces
文献摘要:
Electrochemical CO2 reduction reaction(CO2RR)can enable the valorization of CO2 to useful chemicals and fuels,and may con-tribute to reducing the global carbon footprint and achieving the carbon-neutrality goal by mid-century.Depending on the catalysts used and reaction conditions adopted,it may yield a variety of reduction products ranging from Ci(e.g.,CO,formic acid,methane and methanol),C2(e.g.,ethylene,ethanol and acetate)to C3(e.g.,propanol)hydrocarbons and oxygenates.Studies have established that state-of-the-art Au,Ag and single-atom catalysts can convert CO2 to CO with near-unity selectivity,and that Bi,Sn and In can efficiently reduce CO2 to formic acid or formate.
文献关键词:
作者姓名:
Jie Zhang;Binbin Pan;Yanguang Li
作者机构:
Institute of Functional Nano&Soft Materials(FUNSOM),Soochow University,Suzhou 215123,China;Jiangsu Key Laboratory for Advanced Negative Carbon Technologies,Soochow University,Suzhou 215123,China;Macao Institute of Materials Science and Engineering(MIMSE),MUST-SUDA Joint Research Center for Advanced Functional Materials,Macau University of Science and Technology,Macao 999078,China
引用格式:
[1]Jie Zhang;Binbin Pan;Yanguang Li-.Modulating electrochemical CO2 reduction at interfaces)[J].科学通报(英文版),2022(18):1844-1848
A类:
B类:
Modulating,electrochemical,reduction,interfaces,Electrochemical,reaction,CO2RR,can,enable,valorization,useful,chemicals,fuels,may,tribute,reducing,global,footprint,achieving,neutrality,goal,by,mid,century,Depending,catalysts,used,conditions,adopted,yield,variety,products,ranging,from,Ci,formic,acid,methane,methanol,C2,ethylene,acetate,C3,propanol,hydrocarbons,oxygenates,Studies,have,established,that,state,art,Au,Ag,single,atom,convert,near,unity,selectivity,Bi,Sn,In,efficiently,reduce,formate
AB值:
0.709605
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