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High-entropy materials for electrocatalytic applications: a review of first principles modeling and simulations.

Authors :
Huo, Wenyi
Wang, Shiqi
Dominguez-Gutierrez, F. Javier
Ren, Kai
Kurpaska, Łukasz
Fang, Feng
Papanikolaou, Stefanos
Kim, Hyoung Seop
Jiang, Jianqing
Source :
Materials Research Letters; Sep2023, Vol. 11 Issue 9, p713-732, 20p
Publication Year :
2023

Abstract

High-entropy materials, for both complexity in structure and superiority in performance, have been widely confirmed to be one possible kind of advanced electrocatalyst. Significant efforts have been dedicated to modeling the atomic-level details of high-entropy catalysts to improve the viability for bottom-up design of advanced electrocatalysts. In this review, first, we survey developments in various modeling methods that are based on density functional theory. We review progress in density functional theory simulations for emulating different high-entropy electrocatalysts. Then, we review the advancements in simulations of high-entropy materials for electrocatalytic applications. Finally, we present prospects in this field. Abbreviations: HEMs: high-entropy materials; CCMs: compositionally complex materials; DFT: density functional theory; LDA: local density approximation; GGA: generalized gradient approximation; VASP: Vienna Ab initio simulation package; ECP: effective core potential; PAW: projector-augmented wave potential; VCA: virtual crystal approximation; CPA: coherent potential approximation; SQS: special quasi-random structures; SSOS: small set of ordered structures; SLAE: similar local atomic environment; HEAs: high-entropy alloys; FCC: face-centered cubic; BCC: body-centered cubic; HCP: hexagonal close-packed; ORR: oxygen reduction reaction; OER: oxide evolution reaction; HER: hydrogen evolution reaction; RDS: rate-limiting step; AEM: adsorbate evolution mechanism; LOM: lattice oxygen oxidation mechanism; HEOs: high-entropy oxides; OVs: oxygen vacancies; PDOS: projected densities of states; ADR: ammonia decomposition reaction; NRR: nitrogen reduction reaction; CO<subscript>2</subscript>RR: CO<subscript>2</subscript> reduction reaction; TMDC: transition metal dichalcogenide; TM: transition metal; AOR: alcohol oxidation reaction; GOR: glycerol oxidation reaction; UOR: urea oxidation reaction; HEI: high-entropy intermetallic. This paper reviews recent developments in the field of atomistic simulations of high-entropy electrocatalysts, one of emerging state-of-the-art catalytic materials. [ABSTRACT FROM AUTHOR]

Details

Language :
English
ISSN :
21663831
Volume :
11
Issue :
9
Database :
Complementary Index
Journal :
Materials Research Letters
Publication Type :
Academic Journal
Accession number :
168582864
Full Text :
https://doi.org/10.1080/21663831.2023.2224397