首页|高比能高安全的柔性锂电池设计

高比能高安全的柔性锂电池设计

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目前,柔性和可穿戴/植入电子设备的快速发展对柔性电源的需求越来越大,催发了科学界对柔性储能器件的广泛研究。除优异的机械变形能力外,柔性电子设备的结构特征及潜在应用领域对柔性储能器件提出了高比能、高安全的要求。锂电池自放电率低、能量密度高、循环寿命长,被认为是电子设备的理想能源,正主导着柔性储能器件的发展方向。如何同时获得锂电池的高柔性、高安全性和高能量密度是目前在柔性电子领域面临的主要挑战之一。基于以上问题,本文对未来高比能、高安全的柔性锂电池的发展进行了详细论述。首先,通过代表性实例介绍了柔性电子设备/柔性锂电池的常见应用场景,凸显出对电池高比能和高安全的要求。然后,分别从材料选择角度,包括集流体、电解质和电极活性材料等,及结构设计角度,包括折纸/剪纸结构、仿生结构、三相渗流结构等,论证了如何有效提高电池的柔性、安全性和能量密度。最后,进一步讨论了柔性锂电池研究与发展面临的挑战和未来的发展机遇。
Strategies for developing flexible lithium batteries with high energy and high safety
Nowadays,flexible technology and related electronics are widely used in personal health monitoring,drug delivery,motion detection,power supply,sensors,and electronic skin,and thus greatly enrich our lives.The rapid increasing demand of flexible power sources for implantable medical and wearable electronic devices has simultaneously prompted extensive research in the scientific community on flexible energy storage devices.However,there are still some tough issues getting in the way of further industrialization of the deep application of flexible and wearable electronics,especially,the lack of suitable flexible power supply devices.The power supply device is the key component that guarantees a continuous,uninterrupted,and long-term operation,which is required to have high flexibility,high energy density,long time durability,and high safety for wearable purpose.The structure characteristics and potential application fields of flexible electronic devices require flexible energy storage devices with properties of not only excellent mechanical deformation ability but also high specific energy and high safety.Lithium batteries are considered as the ideal energy sources and are leading the development direction of flexible energy storage devices because of their low self-discharge rate,high energy density and long cycle life.But lithium-ion batteries that are widely used in current consumer electronics cannot meet these demands due to their rigid package,suboptimal cycle stability,and possible safety issues.Traditional lithium-ion batteries have poor flexibility due to the stacked structures of battery packs for fulfilling high energy density and the low yield strain of materials used as the cathode/anode,electrolyte,separator,and current collector in batteries,such as metal collectors,aluminum-plastic films on encapsulating lithium-ion batteries,etc.When subjected to external forces,the current collectors are prone to crack,inducing mechanical failure such as the separation of electrode active materials and collectors,which eventually result in short circuit in the battery,leading to serious safety issues.Therefore,the main problem still focuses on how to simultaneously endow lithium batteries with high flexibility,high safety,and high energy density.The most effective way to develop high-flexible lithium-ion batteries can be classified into two categories:One is fabrication of flexible materials as the mobile components to assemble power supply devices,e.g.,polymers,carbon-based materials,and gel materials,etc.The other is construction of special architectures through rational structural design to attain high flexibility,e.g.,origami and kirigami.To this end,the development of flexible lithium batteries with high specific energy and high safety in the future is thoroughly discussed in this review.Firstly,representative scenarios of electronic devices/flexible lithium batteries for common applications are presented to highlight the demand for high specific energy and high safety of flexible batteries.Then,we describe various strategies for effectively improving flexibility,safety,and energy density of lithium batteries from two aspects:Material selection,including collector,electrolyte and electrode active materials,and structural design,e.g.,origami/kirigami structures,bionic structures and"triple-phase percolation"structures.Finally,the future opportunities and challenges of flexible lithium batteries are fully discussed in this review.

lithium batteriesflexible electronicsflexibilityenergy densitysafety

祝国玺、孙富、鞠江伟、崔光磊

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中国科学院青岛生物能源与过程研究所,青岛 266101

山东能源研究院,青岛 266101

青岛新能源山东省实验室,青岛 266101

中国科学院大学材料科学与光电技术学院,北京 100049

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锂电池 柔性电子 柔性 能量密度 安全性

国家自然科学基金山东省自然科学基金山东省重大科技创新工程项目山东省重大科技创新工程项目

52372245ZR2023ME0272022CXGC0203012020CXGC010401

2024

科学通报
中国科学院国家自然科学基金委员会

科学通报

CSTPCD北大核心
影响因子:1.269
ISSN:0023-074X
年,卷(期):2024.69(10)
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