First-Principles Modeling in Heterogeneous Electrocatalysis

被引:29
作者
Alfonso, Dominic R. [1 ]
Tafen, De Nyago [1 ,2 ]
Kauffmann, Douglas R. [1 ]
机构
[1] US DOE, Natl Energy Technol Lab, Pittsburgh, PA 15236 USA
[2] AECOM, POB 618, South Park, PA 15129 USA
关键词
electrochemistry; heterogeneous catalysis; first-principles; CO2; reduction; water splitting; transition-metal catalyst; ligand-protected nanoparticle; ELECTROCHEMICAL REDUCTION; OXYGEN EVOLUTION; GOLD NANOCLUSTERS; CRYSTAL-STRUCTURE; WATER OXIDATION; CO2; REDUCTION; ELECTROREDUCTION; AU; HYDROGEN; PD;
D O I
10.3390/catal8100424
中图分类号
O64 [物理化学(理论化学)、化学物理学];
学科分类号
070304 ; 081704 ;
摘要
The last decade has witnessed tremendous progress in the development of computer simulation based on quantum mechanical description of the interactions between electrons and between electrons and atomic nuclei with electrode potentials taken into account-promoting the possibility to model electrocatalytic reactions. The cornerstone of this development was laid by the widely used computational hydrogen electrode method which involves a posteriori correction of standard constant charge first principles studies in solvent environment. The description of this technique and its contribution to our effort to understand electrocatalytic reactions on the active sites of metal-based nanoparticles are reviewed. The pathways and energetics of the relevant elementary reactions are presented. We also discussed a recent attempt in the literature to account for the inflow and outflow of electrons from the electrode as electrochemical reactions proceed, which has been greatly assisted by the development of density functional theory within the grand canonical framework. Going beyond the computational hydrogen electrode method by explicit incorporation of electrode potential within the calculations permits access to more detailed insights without requiring extra computational burden.
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页数:18
相关论文
共 61 条
[1]   On the structure of thiolate-protected Au25 [J].
Akola, Jaakko ;
Walter, Michael ;
Whetten, Robert L. ;
Haekkinen, Hannu ;
Groenbeck, Henrik .
JOURNAL OF THE AMERICAN CHEMICAL SOCIETY, 2008, 130 (12) :3756-+
[2]   Assessment of trends in the electrochemical CO2 reduction and H2 evolution reactions on metal nanoparticles [J].
Alfonso, Dominic R. ;
Kauffman, Douglas R. .
MRS COMMUNICATIONS, 2017, 7 (03) :601-606
[3]   Active sites of ligand-protected Au25 nanoparticle catalysts for CO2 electroreduction to CO [J].
Alfonso, Dominic R. ;
Kauffman, Douglas ;
Matranga, Christopher .
JOURNAL OF CHEMICAL PHYSICS, 2016, 144 (18)
[4]  
Aresta M., 2010, CARBON DIOXIDE CHEM
[5]   Active Sites of Au and Ag Nanoparticle Catalysts for CO2 Electroreduction to CO [J].
Back, Seoin ;
Yeom, Min Sun ;
Jung, Yousung .
ACS CATALYSIS, 2015, 5 (09) :5089-5096
[6]   Theoretical Investigation of the Activity of Cobalt Oxides for the Electrochemical Oxidation of Water [J].
Bajdich, Michal ;
Garcia-Mota, Monica ;
Vojvodic, Aleksandra ;
Norskov, Jens K. ;
Bell, Alexis T. .
JOURNAL OF THE AMERICAN CHEMICAL SOCIETY, 2013, 135 (36) :13521-13530
[7]   First-principles computational electrochemistry: Achievements and challenges [J].
Calle-Vallejo, Federico ;
Koper, Marc T. M. .
ELECTROCHIMICA ACTA, 2012, 84 :3-11
[8]   Oxygen Electroreduction Catalyzed by Gold Nanoclusters: Strong Core Size Effects [J].
Chen, Wei ;
Chen, Shaowei .
ANGEWANDTE CHEMIE-INTERNATIONAL EDITION, 2009, 48 (24) :4386-4389
[9]   Metal-Free Catalysts for Oxygen Reduction Reaction [J].
Dai, Liming ;
Xue, Yuhua ;
Qu, Liangti ;
Choi, Hyun-Jung ;
Baek, Jong-Beom .
CHEMICAL REVIEWS, 2015, 115 (11) :4823-4892
[10]   Gold nanoparticles: Assembly, supramolecular chemistry, quantum-size-related properties, and applications toward biology, catalysis, and nanotechnology [J].
Daniel, MC ;
Astruc, D .
CHEMICAL REVIEWS, 2004, 104 (01) :293-346