Lattice‐Disordered High‐Entropy Alloy Engineered by Thermal Dezincification for Improved Catalytic Hydrogen Evolution Reaction

Author:

Huang Kang12,Cao Xun3,Lu Yu3,Xiu Mingzhen4,Cui Kang3,Zhang Bowei1,Shi Wencong5,Xia Jiuyang1,Woods Lilia M.6,Zhu Siyu3,Wang Zheng7,Guo Chunxian8,Li Changming8,Liu Zheng3,Wu Junsheng1,Huang Yizhong3ORCID

Affiliation:

1. Institute for Advanced Materials and Technology University of Science and Technology Beijing Beijing 100083 China

2. School of Optical and Electronic Information Suzhou City University Suzhou 215104 China

3. School of Materials Science and Engineering Nanyang Technological University 50 Nanyang Avenue Singapore 639798 Singapore

4. Energy Research Institute Interdisciplinary Graduate Programme Nanyang Technological University 50 Nanyang Avenue Singapore 639798 Singapore

5. School of Physical Science and Technology Northwestern Polytechnical University Xi'an Shanxi 710072 China

6. Department of Physics University of South Florida Tampa FL 33620 USA

7. School of Chemistry, Chemical Engineering and Biotechnology Nanyang Technological University 62 Nanyang Drive Singapore 637459 Singapore

8. School of Materials Science and Engineering Suzhou University of Science and Technology Suzhou 215009 China

Abstract

AbstractA disordered crystal structure is an asymmetrical atomic lattice resulting from the missing atoms (vacancies) or the lattice misarrangement in a solid‐state material. It has been widely proven to improve the electrocatalytic hydrogen evolution reaction (HER) process. In the present work, due to the special physical properties (the low evaporation temperature of below 900 °C), Zn is utilized as a sacrificial component to create senary PtIrNiCoFeZn high‐entropy alloy (HEA) with highly disordered lattices. The structure of the lattice‐disordered PtIrNiCoFeZn HEA is characterized by the thermal diffusion scattering (TDS) in transmission electron microscope. Density functional theory calculations reveal that lattice disorder not only accelerates both the Volmer step and Tafel step during the HER process but also optimizes the intensity and distribution of projected density of states near the Fermi energy after the H2O and H adsorption. Anomalously high alkaline HER activity and stability are proven by experimental measurements. This work introduces a novel approach to preparing irregular lattices offering highly efficient HEA and a TDS characterization method to reveal the disordered lattice in materials. It provides a new route toward exploring and developing the catalytic activities of materials with asymmetrically disordered lattices.

Funder

Natural Science Foundation of Beijing Municipality

National Natural Science Foundation of China

Fundamental Research Funds for the Central Universities

China Association for Science and Technology

Publisher

Wiley

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