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室温钠硫电池正极材料的纳米结构工程策略

Nanostructure Engineering Strategies of Cathode Materials for Room-Temperature Na-S Batteries.

作者信息

Wang Ye, Huang Xiang Long, Liu Hanwen, Qiu Weiling, Feng Chi, Li Ce, Zhang Shaohui, Liu Hua Kun, Dou Shi Xue, Wang Zhiming M

机构信息

Institute of Fundamental and Frontier Sciences, University of Electronic Science and Technology of China, Chengdu 610054, P.R. China.

School of Chemical Engineering, The University of Queensland, St. Lucia, Brisbane, QLD 4072, Australia.

出版信息

ACS Nano. 2022 Apr 26;16(4):5103-5130. doi: 10.1021/acsnano.2c00265. Epub 2022 Apr 4.

Abstract

Room-temperature sodium-sulfur (RT Na-S) batteries are considered to be a competitive electrochemical energy storage system, due to their advantages in abundant natural reserves, inexpensive materials, and superb theoretical energy density. Nevertheless, RT Na-S batteries suffer from a series of critical challenges, especially on the S cathode side, including the insulating nature of S and its discharge products, volumetric fluctuation of S species during the (de)sodiation process, shuttle effect of soluble sodium polysulfides, and sluggish conversion kinetics. Recent studies have shown that nanostructural designs of S-based materials can greatly contribute to alleviating the aforementioned issues via their unique physicochemical properties and architectural features. In this review, we review frontier advancements in nanostructure engineering strategies of S-based cathode materials for RT Na-S batteries in the past decade. Our emphasis is focused on delicate and highly efficient design strategies of material nanostructures as well as interactions of component-structure-property at a nanosize level. We also present our prospects toward further functional engineering and applications of nanostructured S-based materials in RT Na-S batteries and point out some potential developmental directions.

摘要

室温钠硫(RT Na-S)电池因其在天然储量丰富、材料成本低廉以及理论能量密度卓越等方面的优势,被视为一种具有竞争力的电化学储能系统。然而,RT Na-S电池面临一系列严峻挑战,特别是在硫阴极方面,包括硫及其放电产物的绝缘特性、在(脱)钠过程中硫物种的体积波动、可溶性多硫化钠的穿梭效应以及缓慢的转化动力学。最近的研究表明,基于硫的材料的纳米结构设计可通过其独特的物理化学性质和结构特征,极大地有助于缓解上述问题。在本综述中,我们回顾了过去十年中用于RT Na-S电池的硫基阴极材料纳米结构工程策略的前沿进展。我们重点关注材料纳米结构的精细且高效的设计策略以及纳米尺度下组分-结构-性能的相互作用。我们还展示了对纳米结构硫基材料在RT Na-S电池中进一步功能工程和应用的展望,并指出一些潜在的发展方向。

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