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抑制锂硫电池中多硫化物穿梭的物理场效应

Physical Field Effects to Suppress Polysulfide Shuttling in Lithium-Sulfur Battery.

作者信息

Feng Junan, Shi Chuan, Zhao Xiaoxian, Zhang Ying, Chen Shuangqiang, Cheng Xinbing, Song Jianjun

机构信息

College of Physics, Qingdao University, Qingdao, 266071, P. R. China.

Department of Chemistry, College of Science, Hebei Agricultural University, Baoding,  071001, P. R. China.

出版信息

Adv Mater. 2024 Nov;36(48):e2414047. doi: 10.1002/adma.202414047. Epub 2024 Oct 14.

Abstract

Lithium-sulfur batteries (LSB) with high theoretical energy density are plagued by the infamous shuttle effect of lithium polysulfide (LPS) and the sluggish sulfur reduction/evolution reaction. Extensive research is conducted on how to suppress shuttle effects, including physical structure confinement engineering, chemical adsorption strategy, and the design of sulfur redox catalysts. Recently, the rational design to mitigate shuttle effects and enhance reaction kinetics based on physical field effects has been widely studied, providing a more fundamental understanding of interactions with sulfur species. Herein, the physical field effect is focused and their methods and mechanisms of interaction are summarized systematically with LPS. Overall, the working principle of LSB system, the origin of the shuttle effect, and kinetic trouble in LSB are briefly described. Then, the mechanism and application of rational design of materials based on physical field effect concepts and the external physical field-assisted LSB are elaborated, including electrostatic force, built-in electric field, spin state regulation, strain engineering, external magnetic field, photoassisted and other physical field-assisted strategies are pivotally elaborated and discussed. Finally, the potential directions of physical field effects in enhancing the performance and weakening the shuttle effect of high-energy LSB are summarized and anticipated.

摘要

具有高理论能量密度的锂硫电池(LSB)受到多硫化锂(LPS)臭名昭著的穿梭效应以及缓慢的硫还原/析出反应的困扰。针对如何抑制穿梭效应开展了广泛研究,包括物理结构限域工程、化学吸附策略以及硫氧化还原催化剂的设计。近来,基于物理场效应减轻穿梭效应并增强反应动力学的合理设计得到了广泛研究,为与硫物种的相互作用提供了更基本的理解。在此,聚焦物理场效应,并系统总结其与多硫化锂相互作用的方法和机制。总体而言,简要描述了锂硫电池系统的工作原理、穿梭效应的起源以及锂硫电池中的动力学问题。然后,阐述基于物理场效应概念的材料合理设计以及外部物理场辅助锂硫电池的机制和应用,重点阐述并讨论了静电力、内建电场、自旋态调控、应变工程、外部磁场、光辅助等物理场辅助策略。最后,总结并展望了物理场效应在提高高能锂硫电池性能和减弱穿梭效应方面的潜在方向。

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