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用于析氢反应的过渡金属硫化物基电催化剂的纳米结构设计

Nanoarchitectonics for Transition-Metal-Sulfide-Based Electrocatalysts for Water Splitting.

作者信息

Guo Yanna, Park Teahoon, Yi Jin Woo, Henzie Joel, Kim Jeonghun, Wang Zhongli, Jiang Bo, Bando Yoshio, Sugahara Yoshiyuki, Tang Jing, Yamauchi Yusuke

机构信息

International Center for Materials Nanoarchitectonics (WPI-MANA), National Institute for Materials Science (NIMS), 1-1 Namiki, Tsukuba, Ibaraki, 305-0044, Japan.

Faculty of Science and Engineering, Waseda University, 3-4-1 Okubo, Shinjuku, Tokyo, 169-8555, Japan.

出版信息

Adv Mater. 2019 Apr;31(17):e1807134. doi: 10.1002/adma.201807134. Epub 2019 Feb 21.

DOI:10.1002/adma.201807134
PMID:30793387
Abstract

Heterogenous electrocatalysts based on transition metal sulfides (TMS) are being actively explored in renewable energy research because nanostructured forms support high intrinsic activities for both the hydrogen evolution reaction (HER) and oxygen evolution reaction (OER). Herein, it is described how researchers are working to improve the performance of TMS-based materials by manipulating their internal and external nanoarchitectures. A general introduction to the water-splitting reaction is initially provided to explain the most important parameters in accessing the catalytic performance of nanomaterials catalysts. Later, the general synthetic methods used to prepare TMS-based materials are explained in order to delve into the various strategies being used to achieve higher electrocatalytic performance in the HER. Complementary strategies can be used to increase the OER performance of TMS, resulting in bifunctional water-splitting electrocatalysts for both the HER and the OER. Finally, the current challenges and future opportunities of TMS materials in the context of water splitting are summarized. The aim herein is to provide insights gathered in the process of studying TMS, and describe valuable guidelines for engineering other kinds of nanomaterial catalysts for energy conversion and storage technologies.

摘要

基于过渡金属硫化物(TMS)的异质电催化剂在可再生能源研究中受到积极探索,因为纳米结构形式对析氢反应(HER)和析氧反应(OER)均具有高本征活性。本文描述了研究人员如何通过操控基于TMS材料的内部和外部纳米结构来提高其性能。首先对水分解反应进行了一般性介绍,以解释评估纳米材料催化剂催化性能时最重要的参数。随后,解释了用于制备基于TMS材料的一般合成方法,以便深入探讨用于在HER中实现更高电催化性能的各种策略。可以采用互补策略来提高TMS的OER性能,从而得到用于HER和OER的双功能水分解电催化剂。最后,总结了TMS材料在水分解方面当前面临的挑战和未来机遇。本文旨在提供在研究TMS过程中获得的见解,并描述为能源转换和存储技术设计其他种类纳米材料催化剂的宝贵指导原则。

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