In Situ Amorphization of Electrocatalysts

Author:

Meng Huishan12,Chen Zhijie3,Zhu Jinliang4,You Bo5,Ma Tianyi6,Wei Wei2,Vernuccio Sergio7,Xu Juan1,Ni Bing‐Jie3ORCID

Affiliation:

1. School of Ecological and Environmental Sciences East China Normal University Shanghai 200241 P. R. China

2. Centre for Technology in Water and Wastewater (CTWW) School of Civil and Environmental Engineering University of Technology Sydney Sydney NSW 2007 Australia

3. School of Civil and Environmental Engineering The University of New South Wales Sydney NSW 2052 Australia

4. School of Resources Environment and Materials MOE Key Laboratory of New Processing Technology for Nonferrous Metals and Materials Collaborative Innovation Center of Sustainable Energy Materials Guangxi University Nanning 530004 P. R. China

5. Key Laboratory of Material Chemistry for Energy Conversion and Storage (Ministry of Education) Hubei Key Laboratory of Material Chemistry and Service Failure School of Chemistry and Chemical Engineering Huazhong University of Science and Technology Wuhan 430074 P. R. China

6. School of Science Royal Melbourne Institute of Technology Melbourne VIC 3000 Australia

7. Department of Chemical & Biological Engineering The University of Sheffield Sheffield S1 3JD UK

Abstract

AbstractElectrocatalysis represents an efficient and eco‐friendly approach to energy conversion, enabling the sustainable synthesis of valuable chemicals and fuels. The deliberate engineering of electrocatalysts is crucial to improving the efficacy and scalability of electrocatalysis. Notably, the occurrence of in situ amorphization within electrocatalysts has been observed during various electrochemical processes, influencing the energy conversion efficiency and catalytic mechanism understanding. Of note, the dynamic transformation of catalysts into amorphous structures is complex, often leading to various amorphous configurations. Therefore, revealing this amorphization process and understanding the function of amorphous species are pivotal for elucidating the structure‐activity relationship of electrocatalysts, which will direct the creation of highly efficient catalysts. This review examines the mechanisms behind amorphous structure formation, summarizes characterization methods for detecting amorphous species, and discusses strategies for controlling (pre)catalyst properties and electrochemical conditions that influence amorphization. It also emphasizes the importance of spontaneously formed amorphous species in electrochemical oxidation and reduction reactions. Finally, it addresses challenges in the in situ amorphization of electrocatalysts. aiming to guide the synthesis of electrocatalysts for efficient, selective, and stable electrochemical reactions, and to inspire future advancements in the field.

Funder

Australian Research Council

Publisher

Wiley

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