Please use this identifier to cite or link to this item: https://doi.org/10.1038/s41565-023-01407-1
Title: Ferromagnetic single-atom spin catalyst for boosting water splitting
Authors: Sun, Tao 
Tang, Zhiyuan
Zang, Wenjie 
Li, Zejun
Li, Jing
Li, Zhihao
Cao, Liang 
Rodriguez, Jan Sebastian Dominic
Mariano, Carl Osby M
Xu, Haomin
Lyu, Pin 
Hai, Xiao 
Lin, Huihui 
Sheng, Xiaoyu
Shi, Jiwei
Zheng, Yi
Lu, Ying-Rui
He, Qian 
Chen, Jingsheng 
Novoselov, Kostya S 
Chuang, Cheng-Hao
Xi, Shibo
Luo, Xin
Lu, Jiong 
Keywords: Science & Technology
Technology
Nanoscience & Nanotechnology
Materials Science, Multidisciplinary
Science & Technology - Other Topics
Materials Science
MAGNETIC-FIELD
OXIDATION
OXIDE
Issue Date: Jul-2023
Publisher: NATURE PORTFOLIO
Citation: Sun, Tao, Tang, Zhiyuan, Zang, Wenjie, Li, Zejun, Li, Jing, Li, Zhihao, Cao, Liang, Rodriguez, Jan Sebastian Dominic, Mariano, Carl Osby M, Xu, Haomin, Lyu, Pin, Hai, Xiao, Lin, Huihui, Sheng, Xiaoyu, Shi, Jiwei, Zheng, Yi, Lu, Ying-Rui, He, Qian, Chen, Jingsheng, Novoselov, Kostya S, Chuang, Cheng-Hao, Xi, Shibo, Luo, Xin, Lu, Jiong (2023-07). Ferromagnetic single-atom spin catalyst for boosting water splitting. NATURE NANOTECHNOLOGY 18 (7) : 763-+. ScholarBank@NUS Repository. https://doi.org/10.1038/s41565-023-01407-1
Abstract: Heterogeneous single-atom spin catalysts combined with magnetic fields provide a powerful means for accelerating chemical reactions with enhanced metal utilization and reaction efficiency. However, designing these catalysts remains challenging due to the need for a high density of atomically dispersed active sites with a short-range quantum spin exchange interaction and long-range ferromagnetic ordering. Here, we devised a scalable hydrothermal approach involving an operando acidic environment for synthesizing various single-atom spin catalysts with widely tunable substitutional magnetic atoms (M1) in a MoS2 host. Among all the M1/MoS2 species, Ni1/MoS2 adopts a distorted tetragonal structure that prompts both ferromagnetic coupling to nearby S atoms as well as adjacent Ni1 sites, resulting in global room-temperature ferromagnetism. Such coupling benefits spin-selective charge transfer in oxygen evolution reactions to produce triplet O2. Furthermore, a mild magnetic field of ~0.5 T enhances the oxygen evolution reaction magnetocurrent by ~2,880% over Ni1/MoS2, leading to excellent activity and stability in both seawater and pure water splitting cells. As supported by operando characterizations and theoretical calculations, a great magnetic-field-enhanced oxygen evolution reaction performance over Ni1/MoS2 is attributed to a field-induced spin alignment and spin density optimization over S active sites arising from field-regulated S(p)–Ni(d) hybridization, which in turn optimizes the adsorption energies for radical intermediates to reduce overall reaction barriers.
Source Title: NATURE NANOTECHNOLOGY
URI: https://scholarbank.nus.edu.sg/handle/10635/248072
ISSN: 1748-3387
1748-3395
DOI: 10.1038/s41565-023-01407-1
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