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考虑富锂阴极和硅阳极材料在实用锂离子电池应用中的关键因素。

Considering Critical Factors of Li-rich Cathode and Si Anode Materials for Practical Li-ion Cell Applications.

机构信息

Department of Energy Engineering and School of Energy and Chemical Engineering, Ulsan National Institute of Science and Technology (UNIST), Ulsan, 689-798, Korea.

出版信息

Small. 2015 Sep 2;11(33):4058-73. doi: 10.1002/smll.201500474. Epub 2015 Jun 24.

Abstract

In order to keep pace with increasing energy demands for advanced electronic devices and to achieve commercialization of electric vehicles and energy-storage systems, improvements in high-energy battery technologies are required. Among the various types of batteries, lithium ion batteries (LIBs) are among the most well-developed and commercialized of energy-storage systems. LIBs with Si anodes and Li-rich cathodes are one of the most promising alternative electrode materials for next-generation, high-energy batteries. Si and Li-rich materials exhibit high reversible capacities of <2000 mAh g(-1) and >240 mAh g(-1) , respectively. However, both materials have intrinsic drawbacks and practical limitations that prevent them from being utilized directly as active materials in high-energy LIBs. Examples for Li-rich materials include phase distortion during cycling and side reactions caused by the electrolyte at the surface, and for Si, large volume changes during cycling and low conductivity are observed. Recent progress and important approaches adopted for overcoming and alleviating these drawbacks are described in this article. A perspective on these matters is suggested and the requirements for each material are delineated, in addition to introducing a full-cell prototype utilizing a Li-rich cathode and Si anode.

摘要

为了满足先进电子设备不断增长的能源需求,并实现电动汽车和储能系统的商业化,需要改进高能电池技术。在各种类型的电池中,锂离子电池 (LIB) 是最成熟和商业化的储能系统之一。具有硅阳极和富锂阴极的 LIB 是下一代高能量电池最有前途的替代电极材料之一。硅和富锂材料分别具有 >2000 mAh g(-1) 和 >240 mAh g(-1) 的高可逆容量。然而,这两种材料都存在内在的缺点和实际限制,使其无法直接用作高能 LIB 的活性材料。富锂材料的例子包括在循环过程中的相变形和表面电解质引起的副反应,而对于硅,在循环过程中观察到大的体积变化和低的电导率。本文描述了克服和缓解这些缺点的最新进展和采用的重要方法。对这些问题提出了展望,并阐述了每种材料的要求,此外还介绍了利用富锂阴极和硅阳极的全电池原型。

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