All solid-state lithium-ion batteries based on designed polyrotaxane-containing networks

被引:0
作者
Yan, Shanshan [1 ]
Jia, He [1 ]
Li, Yanzhao [1 ]
Chen, Zehan [1 ]
Lyons, Rowanne [1 ]
He, Zhenni [1 ]
Zhang, Yinghui [1 ]
Liu, Changwei [2 ]
Fustin, Charles-Andre [1 ]
Gohy, Jean-Francois [1 ]
机构
[1] Catholic Univ Louvain, Inst Condensed Matter & Nanosci IMCN, Bioand Soft Matter BSMA, Pl L Pasteur 1, B-1348 Louvain la Neuve, Belgium
[2] Heilongjiang Acad Sci, Inst Petro Chem, Harbin 150040, Peoples R China
基金
芬兰科学院;
关键词
Modified polyrotaxane polymer networks; Solid polymer electrolyte; Catholyte; All-solid-state lithium-ion batteries; POLYMER ELECTROLYTE; CONDUCTIVITY; CATHODE; CYCLODEXTRIN;
D O I
10.1016/j.cej.2024.153874
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
Selecting the appropriate polymer structure for use as both a solid electrolyte and catholyte is essential for enhancing the electrochemical performance of all-solid-state lithium metal batteries. In this study, we are pioneering the customization of solid electrolyte and catholyte synthesis based on novel polyrotaxane (PRX)-containing polymer networks by altering the length of the polyether crosslinkers to tune the properties to meet specific needs of different components. On one hand, the modified PRX polymer networks based on the shorter crosslinker show good mechanical strength, high ionic conductivity (7.25 x 10-4 S cm- 1) and high lithium ions transference number (0.54) at 60 degrees C, allowing their use as solid polymer electrolyte (SPE) self-supporting membranes. On the other hand, all-solid-state lithium-ion batteries with this SPE demonstrate a much higher initial capacity (above 160 mAh/g using LiFePO4 as active material at the cathode and lithium metal as anode), and better cycling performance when paired with longer cross-linked PRX as catholytes than the other noncustomized combinations all solid lithium-ion batteries. Moreover, the cycling performance of the full cell can be further improved by incorporating different lithium salts in the electrolyte (LiTFSI) and cathode (LiClO4). This work highlights that the customized design of solid electrolytes and catholytes based on polymer networks is an efficient strategy to obtain high-performance all-solid-state lithium metal batteries.
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页数:11
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共 62 条
  • [1] Composite Cathodes for Solid-State Lithium Batteries: "Catholytes" the Underrated Giants
    Al-Salih, Hilal
    Houache, Mohamed Seif Eddine
    Baranova, Elena A.
    Abu-Lebdeh, Yaser
    [J]. ADVANCED ENERGY AND SUSTAINABILITY RESEARCH, 2022, 3 (08):
  • [2] Jeffamine® based polymers as highly conductive polymer electrolytes and cathode binder materials for battery application
    Aldalur, Itziar
    Zhang, Heng
    Piszcz, Michal
    Oteo, Uxue
    Rodriguez-Martinez, Lide M.
    Shanmukaraj, Devaraj
    Rojo, Teofilo
    Armand, Michel
    [J]. JOURNAL OF POWER SOURCES, 2017, 347 : 37 - 46
  • [3] Progress in Solid Polymer Electrolytes for Lithium-Ion Batteries and Beyond
    An, Yong
    Han, Xue
    Liu, Yuyang
    Azhar, Alowasheeir
    Na, Jongbeom
    Nanjundan, Ashok Kumar
    Wang, Shengping
    Yu, Jingxian
    Yamauchi, Yusuke
    [J]. SMALL, 2022, 18 (03)
  • [4] Efficient production of polyrotaxanes from α-cyclodextrin and poly(ethylene glycol)
    Araki, J
    Zhao, CM
    Kohzo, I
    [J]. MACROMOLECULES, 2005, 38 (17) : 7524 - 7527
  • [5] High Salt-Content Plasticized Flame-Retardant Polymer Electrolytes
    Bai, Lu
    Ghiassinejad, Sina
    Brassinne, Jeremy
    Fu, Yang
    Wang, Jiande
    Yang, Hui
    Vlad, Alexandru
    Minoia, Andrea
    Lazzaroni, Roberto
    Gohy, Jean-Francois
    [J]. ACS APPLIED MATERIALS & INTERFACES, 2021, 13 (37) : 44844 - 44859
  • [6] Decoding Polymer Architecture Effect on Ion Clustering, Chain Dynamics, and Ionic Conductivity in Polymer Electrolytes
    Bakar, Recep
    Darvishi, Saeid
    Aydemir, Umut
    Yahsi, Ugur
    Tav, Cumali
    Menceloglu, Yusuf Ziya
    Senses, Erkan
    [J]. ACS APPLIED ENERGY MATERIALS, 2023, 6 (07) : 4053 - 4064
  • [7] Rearrangement of Ion Transport Path on Nano-Cross-linker for All-Solid-State Electrolyte with High Room Temperature Ionic Conductivity
    Cai, Xiaomin
    Ding, Jianlong
    Chi, Ziyun
    Wang, Wenqiang
    Wang, Dongya
    Wang, Gengchao
    [J]. ACS NANO, 2021, 15 (12) : 20489 - 20503
  • [8] Flower-shaped lithium nitride as a protective layer via facile plasma activation for stable lithium metal anodes
    Chen, Ke
    Pathak, Rajesh
    Gurung, Ashim
    Adhamash, Ezaldeen A.
    Bahrami, Behzad
    He, Qingquan
    Qiao, Hui
    Smirnova, Alevtina L.
    Wu, James J.
    Qiao, Qiquan
    Zhou, Yue
    [J]. ENERGY STORAGE MATERIALS, 2019, 18 : 389 - 396
  • [9] Cyclodextrin-Based Polymer-Assisted Ru Nanoparticles for the Aqueous Hydrogenation of Biomass-Derived Platform Molecules
    Chen, Manyu
    Dong, Qifeng
    Ni, Wenxiu
    Zhao, Xiuge
    Gu, Qingwen
    Tang, Guoping
    Li, Difan
    Ma, Wenbao
    Hou, Zhenshan
    [J]. CHEMISTRYSELECT, 2017, 2 (32): : 10537 - 10545
  • [10] Enhancing the Interfacial Ionic Transport via in Situ 3D Composite Polymer Electrolytes for Solid-State Lithium Batteries
    Chen, Weimin
    Xiong, Xiaoqin
    Zeng, Rui
    Jiang, Long
    Chen, Zhigao
    Xiao, Zhuangwei
    Qie, Long
    Yu, Faquan
    Huang, Yunhui
    [J]. ACS APPLIED ENERGY MATERIALS, 2020, 3 (07): : 7200 - 7207