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research article

Anisotropic In-Plane strain engineering Ni(OH)2 to activate alkaline hydrogen evolution reaction

Zhong, Wenda
•
Yu, Ruohan
•
Cao, Weilong
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September 8, 2023
Chemical Engineering Journal

Realizing a hydrogen economy strongly requires alkaline water electrolysis to achieve large-scale generation of H2, but lacks stable and efficient catalysts. The insufficient active sites in Ni(OH)2 impair the catalytic performance of alkaline HER. Herein, trivalent Al3+ is introduced to tune the in-plane anistropical strain of Ni(OH)2, optimizing the electronic structure of the basal plane to provide more active sites for enhanced alkaline HER performance. DFT calculation reveals that the in-plane strain through Al3+ facilitates the adsorption energy of H*, reduces the HER energy barrier, and adjusts the Volmer process. As a result, the optimized catalyst exhibits efficient HER catalytic performance at an overpotential of 190 mV to drive 100 mA cm-2 along with the low Tafel slope of 48 mV dec-1 in alkaline solution. The anisotropic in-plane strain engineering strategy highlights the importance of atomic engineering on the HER catalysts.

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Type
research article
DOI
10.1016/j.cej.2023.145881
Web of Science ID

WOS:001074999900001

Author(s)
Zhong, Wenda
Yu, Ruohan
Cao, Weilong
Sun, Le
Yang, Yi
Manke, Ingo
Yang, Chao
Zhao, Kangning  
Date Issued

2023-09-08

Publisher

ELSEVIER SCIENCE SA

Published in
Chemical Engineering Journal
Volume

474

Article Number

145881

Subjects

Engineering, Environmental

•

Engineering, Chemical

•

Engineering

•

alkaline hydrogen evolution

•

anisotropic in-plane strain

•

lattice distortion

•

electronic structure

•

layered double hydroxides

•

beta-nickel hydroxide

•

efficient electrocatalyst

•

adsorption

•

aluminum

•

nanorods

•

surface

•

phases

•

ratios

•

xps

Editorial or Peer reviewed

REVIEWED

Written at

EPFL

EPFL units
LAS  
Available on Infoscience
October 23, 2023
Use this identifier to reference this record
https://infoscience.epfl.ch/handle/20.500.14299/201817
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