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Density-Controlled Metal Nanocluster with Modulated Surface for pH-Universal and Robust Water Splitting.

Authors :
Shao, Xiaodong
Liang, Mengfang
Kim, Min Gyu
Ajmal, Sara
Kumar, Ashwani
Liu, Xinghui
Jung, Hyun Seung
Jin, Haiyan
Cao, Fengliang
Yu, Jianmin
Tran, Kim My
Ko, Hyun
Lee, Jinsun
Bae, Jong Wook
Lee, Hyoyoung
Source :
Advanced Functional Materials; 3/16/2023, Vol. 33 Issue 12, p1-11, 11p
Publication Year :
2023

Abstract

Reducing the particle sizes of transition metals [TMs] and avoiding their aggregation are crucial for increasing the TMs atom utilization and enhancing their industrial potential. However, it is still challenging to achieve uniform distributed and density-controlled TMs nanoclusters [NCs] under high temperatures due to the strong interatomic metallic bonds and high surface energy ofNCs. Herein, a series ofTMs NCs with controllable density and nitrogen-modulated surface are prepared with the assistance of a selected covalent organic polymer [COP], which can provide continuous anchoring sites and size-limited skeletons. The prepared Ir NCs show superior hydrogen evolution reaction [HER] and oxygen evolution reaction [OER] activities than commercial Pt/C and Ir/C in both acid and alkaline media. In particular, the as-prepared Ir NCs exhibit remarkable full water splitting performance, reaching a current density of 10 mA cm<superscript>-2</superscript> at ultralow overpotentials of 1.42 and 1.43 V in alkaline and acidic electrolyte, respectively. The excellent electrocatalytic activities are attributed to the increased surface atom utilization and the improved intrinsic activity ofIr NCs. More importantly, the Ir NCs catalyst shows superior long-term stability due to the strong interaction between Ir NCs and the N-doped carbon layer. [ABSTRACT FROM AUTHOR]

Details

Language :
English
ISSN :
1616301X
Volume :
33
Issue :
12
Database :
Complementary Index
Journal :
Advanced Functional Materials
Publication Type :
Academic Journal
Accession number :
163353798
Full Text :
https://doi.org/10.1002/adfm.202211192