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全固态无负极锂金属电池纳米化复合集流体构筑

刘泽宇 黄文泽 肖阳 张俊东 孔伟进 武鹏 赵辰孜 陈爱兵 张强

物理化学学报2024,Vol.40Issue(3):60-68,9.
物理化学学报2024,Vol.40Issue(3):60-68,9.DOI:10.3866/PKU.WHXB202305040

全固态无负极锂金属电池纳米化复合集流体构筑

Nanocomposite Current Collectors for Anode-Free All-Solid-State Lithium Batteries

刘泽宇 1黄文泽 2肖阳 1张俊东 3孔伟进 2武鹏 4赵辰孜 2陈爱兵 5张强2

作者信息

  • 1. 清华大学化学工程系,绿色化学反应工程与技术北京市重点实验室,北京 100084||清华大学致理书院,北京 100084
  • 2. 清华大学化学工程系,绿色化学反应工程与技术北京市重点实验室,北京 100084
  • 3. 清华大学化学工程系,绿色化学反应工程与技术北京市重点实验室,北京 100084||清华大学探微书院,北京 100084
  • 4. 宝马(中国)服务有限公司,北京 101318
  • 5. 河北科技大学化学与制药工程学院,石家庄 050018
  • 折叠

摘要

Abstract

The anode-free solid-state lithium battery(AFSSLB)is a type of lithium battery that utilizes an initial charging process to generate lithium metal as the anode.With a 1:1 anode-to-cathode capacity ratio,it enables any lithiated cathode system to achieve a maximal energy density.Furthermore,the incorporation of inorganic solid electrolytes in the AFSSLB greatly enhances its intrinsic safety.However,the AFSSLB faces challenges related to interfacial issues between the electrolyte and collector.During the cycling process,uneven lithium-ion flux can result in contact loss and dendrite growth,ultimately leading to rapid battery failure.Addressing these interfacial problems is crucial for the successful implementation and performance of AFSSLBs.The absence of initial lithium metal material prevents the battery system from accommodating additional lithium through a modified anode.Instead,it relies on high Coulomb efficiency during cycling.Consequently,ensuring continuous and uniform contact at the anode interface is crucial for maintaining the reversibility of lithium deposition.Herein,a nanocomposite current collector is introduced to enhance the interface between the collector and electrolyte in AFSSLB.In this approach,silver nanoparticles are dispersed within the carbon materials to construct a composite current collector.The incorporation of the silver-carbon nanocomposite layer results in a low interfacial impedance of 10 Ω·cm-2,indicating that the electrolyte-collector interface maintains contact throughout the charging and discharging processes.The focused ion beam(FIB)technology and electron microscopy were employed to analyze the battery cross sections,revealing that lithium metal could be deposited in a thickness of more than 25 μm without short-circuiting using this silver-carbon nanocomposite current collector.The solid-state batteries equipped with nanocomposite current collectors exhibited an enhanced dissolution of silver in the lithium metal,leading to the formation of abundant lithiophilic sites.The nanocomposites facilitate the rapid transfer of Li atoms within the anodes,thus achieving uniform lithium metal deposition.Theoretical analysis using the nucleation equation demonstrates that using nano-silver as a current collector can reduce the nucleation work required for deposition by at least four orders of magnitude.The smaller nucleation force contributes to the uniform and stable deposition of lithium metal during continuous cycling.The solid-state batteries demonstrated improved interfacial contact,resulting in the uniform and stable lithium metal deposition of over 7.0 mAh·cm-2 for more than 200 cycles at 0.25 mA·cm-2.The cycling performances of all-solid-state batteries can be significantly improved through the design of nanocomposite collectors.This presents an effective strategy for advancing the practical implementation of all-solid-state lithium metal batteries,particularly those utilizing an anode-free configuration.

关键词

全固态电池/无负极锂金属二次电池/纳米集流体/界面接触/锂金属电池

Key words

All-solid-state battery/Anode-free rechargeable battery/Nanocomposite current collector/Interfacial contact/Li metal battery

分类

化学

引用本文复制引用

刘泽宇,黄文泽,肖阳,张俊东,孔伟进,武鹏,赵辰孜,陈爱兵,张强..全固态无负极锂金属电池纳米化复合集流体构筑[J].物理化学学报,2024,40(3):60-68,9.

基金项目

The project was supported by the National Key Research and Development Program of China(2021YFB2500300),the National Natural Science Foundation of China(22108151),the S&T Program of Hebei Province(22344402D),and the International Postdoctoral Exchange Fellowship Program(Talent-Introduction Program YJ20210125).国家重点研发计划(2021YFB2500300),国家自然科学基金(22108151),河北省科技项目(22344402D),博士后国际交流计划引进项目(YJ20210125)资助 (2021YFB2500300)

物理化学学报

OA北大核心CSTPCD

1000-6818

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