Research Progress on the Composite Methods of Composite Electrolytes for Solid-State Lithium Batteries

被引:1
作者
Wang, Xu [1 ,2 ]
Huang, Sipeng [1 ]
Peng, Yiting [1 ]
Min, Yulin [1 ,3 ]
Xu, Qunjie [1 ,3 ]
机构
[1] Shanghai Univ Elect Power, Shanghai Engn Res Ctr Energy Saving Heat Exchange, Shanghai Key Lab Mat Protect & Adv Mat Elect Power, Shanghai 200090, Peoples R China
[2] China Three Gorges Corp, Sci & Technol Res Inst, Beijing 101100, Peoples R China
[3] Tongji Univ, Inst Pollut Control & Ecol Secur, Coll Environm Sci & Engn, State Key Lab Pollut Control & Resources Reuse, Shanghai 200092, Peoples R China
基金
中国国家自然科学基金;
关键词
Solid-State Lithium Battery; Composite Electrolyte; Composite Method; Internal Structure; SUCCINONITRILE-BASED ELECTROLYTE; POLYMER ELECTROLYTES; HYBRID ELECTROLYTES; CONDUCTIVITY ENHANCEMENT; IONIC-CONDUCTIVITY; DENDRITE-FREE; METAL ANODE; LI METAL; ENERGY; PERFORMANCE;
D O I
10.1002/cssc.202301262
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
In the current challenging energy storage and conversion landscape, solid-state lithium metal batteries with high energy conversion efficiency, high energy density, and high safety stand out. Due to the limitations of material properties, it is difficult to achieve the ideal requirements of solid electrolytes with a single-phase electrolyte. A composite solid electrolyte is composed of two or more different materials. Composite electrolytes can simultaneously offer the advantages of multiple materials. Through different composite methods, the merits of various materials can be incorporated into the most essential part of the battery in a specific form. Currently, more and more researchers are focusing on composite methods for combining components in composite electrolytes. The ion transport capacity, interface stability, machinability, and safety of electrolytes can be significantly improved by selecting appropriate composite methods. This review summarizes the composite methods used for the components of composite electrolytes, such as filler blending, embedded framework, and multilayer bonding. It also discusses the future development trends of all-solid-state lithium batteries (ASSLBs). Composite electrolytes are a promising direction for solving the practical application problems of solid-state lithium batteries. The composite method greatly affects the internal structure and performance of composite electrolytes. This review summarizes different composite methods such as filler blending, embedded skeleton, and multilayer bonding, and looks forward to the development trend of solid-state lithium batteries. image
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页数:24
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共 153 条
  • [21] Extended Electrochemical Window of Solid Electrolytes via Heterogeneous Multilayered Structure for High-Voltage Lithium Metal Batteries
    Duan, Hui
    Fan, Min
    Chen, Wan-Ping
    Li, Jin-Yi
    Wang, Peng-Fei
    Wang, Wen-Peng
    Shi, Ji-Lei
    Yin, Ya-Xia
    Wan, Li-Jun
    Guo, Yu-Guo
    [J]. ADVANCED MATERIALS, 2019, 31 (12)
  • [22] Research progress and prospect in typical sulfide solid-state electrolytes
    Duan, Yi
    Bai, Xiangtao
    Yu, Tianwei
    Rong, Yang
    Wu, Yanlong
    Wang, Xi
    Yang, Junfeng
    Wang, Jiantao
    [J]. JOURNAL OF ENERGY STORAGE, 2022, 55
  • [23] Laboratory and modelling investigation of root-reinforced system for slope stabilisation
    Eab, Kreng Hav
    Likitlersuang, Suched
    Takahashi, Akihiro
    [J]. SOILS AND FOUNDATIONS, 2015, 55 (05) : 1270 - 1281
  • [24] Fundamentals of inorganic solid-state electrolytes for batteries
    Famprikis, Theodosios
    Canepa, Pieremanuele
    Dawson, James A.
    Islam, M. Saiful
    Masquelier, Christian
    [J]. NATURE MATERIALS, 2019, 18 (12) : 1278 - 1291
  • [25] Transient Behavior of the Metal Interface in Lithium Metal-Garnet Batteries
    Fu, Kun
    Gong, Yunhui
    Fu, Zhezhen
    Xie, Hua
    Yao, Yonggang
    Liu, Boyang
    Carter, Marcus
    Wachsman, Eric
    Hu, Liangbing
    [J]. ANGEWANDTE CHEMIE-INTERNATIONAL EDITION, 2017, 56 (47) : 14942 - 14947
  • [26] Flexible, solid-state, ion-conducting membrane with 3D garnet nanofiber networks for lithium batteries
    Fu, Kun
    Gong, Yunhui
    Dai, Jiaqi
    Gong, Amy
    Han, Xiaogang
    Yao, Yonggang
    Wang, Chengwei
    Wang, Yibo
    Chen, Yanan
    Yan, Chaoyi
    Li, Yiju
    Wachsman, Eric D.
    Hu, Liangbing
    [J]. PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 2016, 113 (26) : 7094 - 7099
  • [27] Antiperovskite Ionic Conductor Layer for Stabilizing the Interface of NASICON Solid Electrolyte Against Li Metal in All-Solid-State Batteries
    Gao, Lei
    Zhao, Ruo
    Han, Songbai
    Li, Shuai
    Zou, Ruqiang
    Zhao, Yusheng
    [J]. BATTERIES & SUPERCAPS, 2021, 4 (09) : 1491 - 1498
  • [28] Designing of root-soil-like polyethylene oxide-based composite electrolyte for dendrite-free and long-cycling all-solid-state lithium metal batteries
    Gao, Lu
    Li, Jianxin
    Ju, Jingge
    Wang, Liyuan
    Yan, Jing
    Cheng, Bowen
    Kang, Weimin
    Deng, Nanping
    Li, Yutao
    [J]. CHEMICAL ENGINEERING JOURNAL, 2020, 389
  • [29] Promises, Challenges, and Recent Progress of Inorganic Solid-State Electrolytes for All-Solid-State Lithium Batteries
    Gao, Zhonghui
    Sun, Huabin
    Fu, Lin
    Ye, Fangliang
    Zhang, Yi
    Luo, Wei
    Huang, Yunhui
    [J]. ADVANCED MATERIALS, 2018, 30 (17)
  • [30] Atomistic Insight into Ion Transport and Conductivity in Ga/Al-Substituted Li7La3Zr2O12 Solid Electrolytes
    Garcia Daza, Fabian A.
    Bonilla, Mauricio R.
    Llordes, Anna
    Carrasco, Javier
    Aldimatskaya, Elena
    [J]. ACS APPLIED MATERIALS & INTERFACES, 2019, 11 (01) : 753 - 765