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用于电化学能源应用的过渡金属氮化物。

Transition metal nitrides for electrochemical energy applications.

作者信息

Wang Hao, Li Jianmin, Li Ke, Lin Yanping, Chen Jianmei, Gao Lijun, Nicolosi Valeria, Xiao Xu, Lee Jong-Min

机构信息

School of Chemical and Biomedical Engineering, Nanyang Technological University, Singapore 637459, Singapore.

出版信息

Chem Soc Rev. 2021 Jan 21;50(2):1354-1390. doi: 10.1039/d0cs00415d. Epub 2020 Dec 9.

Abstract

Transition metal nitrides (TMNs), by virtue of their unique electronic structure, high electrical conductivity, superior chemical stability, and excellent mechanical robustness, have triggered tremendous research interest over the past decade, and showed great potential for electrochemical energy conversion and storage. However, bulk TMNs usually suffer from limited numbers of active sites and sluggish ionic kinetics, and eventually ordinary electrochemical performance. Designing nanostructured TMNs with tailored morphology and good dispersity has proved an effective strategy to address these issues, which provides a larger specific surface area, more abundant active sites, and shorter ion and mass transport distances over the bulk counterparts. Herein, the most up-to-date progress on TMN-based nanomaterials is comprehensively reviewed, focusing on geometric-structure design, electronic-structure engineering, and applications in electrochemical energy conversion and storage, including electrocatalysis, supercapacitors, and rechargeable batteries. Finally, we outline the future challenges of TMN-based nanomaterials and their possible research directions beyond electrochemical energy applications.

摘要

过渡金属氮化物(TMNs)凭借其独特的电子结构、高电导率、卓越的化学稳定性和出色的机械强度,在过去十年中引发了大量研究兴趣,并在电化学能量转换和存储方面展现出巨大潜力。然而,块状TMNs通常存在活性位点数量有限和离子动力学迟缓的问题,最终导致其电化学性能一般。设计具有定制形态和良好分散性的纳米结构TMNs已被证明是解决这些问题的有效策略,相较于块状材料,纳米结构TMNs具有更大的比表面积、更丰富的活性位点以及更短的离子和质量传输距离。在此,本文全面综述了基于TMN的纳米材料的最新进展,重点关注几何结构设计、电子结构工程以及在电化学能量转换和存储中的应用,包括电催化、超级电容器和可充电电池。最后,我们概述了基于TMN的纳米材料未来面临的挑战以及电化学能量应用之外可能的研究方向。

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