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柔性可充电电池的最新进展。

Recent progress of flexible rechargeable batteries.

作者信息

Zhu Xiao, Zhang Haoran, Huang Yongxin, He Er, Shen Yun, Huang Gang, Yuan Shouyi, Dong Xiaoli, Zhang Ye, Chen Renjie, Zhang Xinbo, Wang Yonggang

机构信息

Department of Chemistry, Shanghai Key Laboratory of Molecular Catalysis and Innovative Materials, Institute of Fiber Electronic Materials and Devices, Collaborative Innovation Center of Chemistry for Energy Materials (iChEM), Fudan University, Shanghai 200433, China.

State Key Laboratory of Rare Earth Resource Utilization, Changchun Institute of Applied Chemistry, Chinese Academy of Sciences, Changchun 130022, China.

出版信息

Sci Bull (Beijing). 2024 Dec 15;69(23):3730-3755. doi: 10.1016/j.scib.2024.09.032. Epub 2024 Sep 24.

Abstract

The rapid popularization of wearable electronics, soft robots and implanted medical devices has stimulated extensive research in flexible batteries, which are bendable, foldable, knittable, wearable, and/or stretchable. Benefiting from these distinct characteristics, flexible batteries can be seamlessly integrated into various wearable/implantable devices, such as smart home systems, flexible displays, and implantable sensors. In contrast to conventional lithium-ion batteries necessitating the incorporation of stringent current collectors and packaging layers that are typically rigid, flexible batteries require the flexibility of each component to accommodate diverse shapes or sizes. Accordingly, significant advancements have been achieved in the development of flexible electrodes, current collectors, electrolytes, and flexible structures to uphold superior electrochemical performance and exceptional flexibility. In this review, typical structures of flexible batteries are firstly introduced and classified into mono-dimensional, two-dimensional, and three-dimensional structures according to their configurations. Subsequently, five distinct types of flexible batteries, including flexible lithium-ion batteries, flexible sodium-ion batteries, flexible zinc-ion batteries, flexible lithium/sodium-air batteries, and flexible zinc/magnesium-air batteries, are discussed in detail according to their configurations, respectively. Meanwhile, related comprehensive analysis is introduced to delve into the fundamental design principles pertaining to electrodes, electrolytes, current collectors, and integrated structures for various flexible batteries. Finally, the developments and challenges of flexible batteries are summarized, offering viable guidelines to promote the practical applications in the future.

摘要

可穿戴电子设备、软体机器人和植入式医疗设备的迅速普及,激发了对柔性电池的广泛研究,这种电池可弯曲、可折叠、可编织、可穿戴和/或可拉伸。得益于这些独特特性,柔性电池能够无缝集成到各种可穿戴/植入式设备中,如智能家居系统、柔性显示器和植入式传感器。与传统锂离子电池需要加入通常为刚性的严格集流体和封装层不同,柔性电池要求每个组件都具有柔韧性,以适应各种形状或尺寸。因此,在开发柔性电极、集流体、电解质和柔性结构以保持卓越的电化学性能和出色的柔韧性方面已经取得了重大进展。在这篇综述中,首先介绍了柔性电池的典型结构,并根据其构型将其分为一维、二维和三维结构。随后,分别根据其构型详细讨论了五种不同类型的柔性电池,包括柔性锂离子电池、柔性钠离子电池、柔性锌离子电池、柔性锂/钠空气电池和柔性锌/镁空气电池。同时,引入了相关的综合分析,以深入探讨各种柔性电池在电极、电解质、集流体和集成结构方面的基本设计原则。最后,总结了柔性电池的发展和挑战,为促进其未来的实际应用提供了可行的指导方针。

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