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基于锂硫磷氯(LiPSCl)的全固态电池,采用银纳米颗粒改性石墨阳极,以提高过充抗性并增加能量密度。

LiPSCl-Based All-Solid-State Battery with a Silver Nanoparticle-Modified Graphite Anode for Improved Resistance to Overcharging and Increased Energy Density.

作者信息

Pang Bo, Yang Tianqi, Wu Zhan, Li Zuguang, Jin Zheyu, Zhang Wenkui, Xia Yang, Huang Hui, He Xinping, Gan Yongping, Xia Xinhui, Zhang Jun

机构信息

College of Materials Science and Engineering, Zhejiang University of Technology, Hangzhou 310014, China.

College of Chemical Engineering, Zhejiang University of Technology, Hangzhou 310014, China.

出版信息

ACS Appl Mater Interfaces. 2024 Apr 24;16(16):20510-20519. doi: 10.1021/acsami.4c01172. Epub 2024 Apr 16.

DOI:10.1021/acsami.4c01172
PMID:38623904
Abstract

All-solid-state lithium batteries (ASSLBs) are attracting tremendous attention due to their improved safety and higher energy density. However, the use of a metallic lithium anode poses a major challenge due to its low stability and processability. Instead, the graphite anode exhibits high reversibility for the insertion/deinsertion of lithium ions, giving ASSLBs excellent cyclic stability but a lower energy density. To increase the energy density of ASSLBs with the graphite anode, it is necessary to lower the negative/positive (N/P) capacity ratio and to increase the charging voltage. These strategies bring new challenges to lithium metal plating and dendrite growth. Here, a nano-Ag-modified graphite composite electrode (Ag@Gr) is developed to overcome these shortcomings for LiPSCl-based ASSLBs. The Ag@Gr composite exhibits a strong ability to inhibit lithium metal plating and fast lithium-ion transport kinetics. Ag nanoparticles can accommodate excess Li, and the as-obtained Li-Ag alloy enhances the kinetics of the composite electrode. The ASSLB with the Li(NiCoMn)O cathode and Ag@Gr anode achieves an energy density of 349 W h kg. The full cell using Ag@Gr with an N/P ratio of 0.6 also highlights the rate performance. This work provides a simple and effective method to regulate the charge transport kinetics of graphite anodes and improve the cyclic performance and energy density of ASSLBs.

摘要

全固态锂电池(ASSLBs)因其安全性的提高和更高的能量密度而备受关注。然而,金属锂负极的使用由于其低稳定性和可加工性而带来了重大挑战。相反,石墨负极对锂离子的嵌入/脱嵌表现出高可逆性,赋予ASSLBs优异的循环稳定性,但能量密度较低。为了提高采用石墨负极的ASSLBs的能量密度,有必要降低负/正(N/P)容量比并提高充电电压。这些策略给锂金属电镀和枝晶生长带来了新的挑战。在此,开发了一种纳米银改性的石墨复合电极(Ag@Gr)来克服基于LiPSCl的ASSLBs的这些缺点。Ag@Gr复合材料表现出强大的抑制锂金属电镀的能力和快速的锂离子传输动力学。银纳米颗粒可以容纳过量的锂,所得到的锂-银合金增强了复合电极的动力学。具有Li(NiCoMn)O阴极和Ag@Gr阳极的ASSLB实现了349 W h kg的能量密度。使用N/P比为0.6的Ag@Gr的全电池也突出了倍率性能。这项工作提供了一种简单有效的方法来调节石墨负极的电荷传输动力学,并提高ASSLBs的循环性能和能量密度。

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