Metal Alloys-Structured Electrocatalysts: Metal-Metal Interactions, Coordination Microenvironments, and Structural Property-Reactivity Relationships
- PMID: 37089082
- DOI: 10.1002/adma.202301836
Metal Alloys-Structured Electrocatalysts: Metal-Metal Interactions, Coordination Microenvironments, and Structural Property-Reactivity Relationships
Abstract
Metal alloys-structured electrocatalysts (MAECs) have made essential contributions to accelerating the practical applications of electrocatalytic devices in renewable energy systems. However, due to the complex atomic structures, varied electronic states, and abundant supports, precisely decoding the metal-metal interactions and structure-activity relationships of MAECs still confronts great challenges, which is critical to direct the future engineering and optimization of MAECs. Here, this timely review comprehensively summarizes the latest advances in creating the MAECs, including the metal-metal interactions, coordination microenvironments, and structure-activity relationships. First, the fundamental classification, design, characterization, and structural reconstruction of MAECs are outlined. Then, the electrocatalytic merits and modulation strategies of recent breakthroughs for noble and non-noble metal-structured MAECs are thoroughly discussed, such as solid solution alloys, intermetallic alloys, and single-atom alloys. Particularly, unique insights into the bond interactions, theoretical understanding, and operando techniques for mechanism disclosure are given. Thereafter, the current states of diverse MAECs with a unique focus on structural property-reactivity relationships, reaction pathways, and performance comparisons are discussed. Finally, the future challenges and perspectives for MAECs are systematically discussed. It is believed that this comprehensive review can offer a substantial impact on stimulating the widespread utilization of metal alloys-structured materials in electrocatalysis.
Keywords: electrocatalysis; energy conversions; metal alloys; metal-metal interactions; noble metals.
© 2023 Wiley-VCH GmbH.
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Grants and funding
- 2021YFE0205000/National Key R&D Program of China
- 52273269/National Natural Science Foundation of China
- 52203177/National Natural Science Foundation of China
- 52161145402/National Natural Science Foundation of China
- 52173133/National Natural Science Foundation of China
- 2023YFH0027/Sichuan Science and Technology Program
- 2023YFH0008/Sichuan Science and Technology Program
- 2021YFG0238/Sichuan Science and Technology Program
- 2021YFH0087/Sichuan Science and Technology Program
- ZYJC21047/1·3·5 Project for Disciplines of Excellence, West China Hospital, Sichuan University
- sklpme2022-3-07/State Key Laboratory of Polymer Materials Engineering
- sklpme2021-4-02/State Key Laboratory of Polymer Materials Engineering
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