Rational design of an in-build quasi-solid-state electrolyte for high-performance lithium-ion batteries with the silicon-based anode

被引:11
作者
Zhao, Enyou [1 ]
Luo, Shiqiang [1 ]
Hu, Anyi [1 ]
Liao, Zhu [1 ]
Huang, Chenxi [1 ]
Akihiro, Orita [2 ]
Jiang, Ping [3 ]
Yang, Li [1 ,4 ,5 ]
机构
[1] Shanghai Jiao Tong Univ, Sch Chem & Chem Engn, Shanghai 200240, Peoples R China
[2] Showa Denko Mat Co Ltd, Tokyo 1006606, Japan
[3] Shanghai Jiao Tong Univ, Sch Med, Shanghai 200030, Peoples R China
[4] Shanghai Jiao Tong Univ, Hirano Inst Mat Innovat, Shanghai 200240, Peoples R China
[5] Shanghai Electrochem Energy Devices Res Ctr, Shanghai 200240, Peoples R China
基金
中国国家自然科学基金;
关键词
Lithium-ion battery; Si-based anode; In situ polymerization; Quasi-solid-state electrolyte; Full-cell evaluations; FLUOROETHYLENE CARBONATE; STABILITY; PROGRESS;
D O I
10.1016/j.cej.2023.142306
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
Design and optimization of the electrolyte are essential for improving electrochemical performances of high-energy-density lithium-ion batteries (LIBs) with silicon-based anodes. However, the dramatic volume change of silicon and the repeated destruction of the solid electrolyte interphase (SEI) film bring formidable challenges for electrolyte exploitation. Herein, a quasi-solid-state electrolyte is proposed via in situ polymerization with 1,3,5-trioxane (TXE) as the monomer, lithium bistrifluoromethanesulfonimide (LiTFSI) and lithium difluoro(oxalato) borate (LiDFOB) as lithium salts, which delivers excellent ionic conductivity and sufficient anion transference number. By half-cell evaluation with the quasi-solid-state electrolyte, the in situ generated polymer skeleton and modified SEI film effectively suppressed the volume expansion of silicon-graphite (Si-Gr) anode to 26.7% after 300 cycles, significantly lower than 60.7% for conventional liquid electrolytes. Furthermore, the LiNi0.6-Co0.2Mn0.2O2||Si-Gr full-cell test demonstrates that the quasi-solid-state electrolyte can also protect the cathode structure and inhibit the dissolution and shuttling of transition metals. Ultimately, capacity retention of the full cell is up to 86.0% after 200 cycles with high average coulombic efficiency (99.79%) at 25 degrees C, and the electrolyte further enhances its cycling stability at high temperature (60 degrees C). This work proposes a straightforward strategy for the comprehensive enhancement of battery safety and electrochemical performance with Si-based anodes.
引用
收藏
页数:10
相关论文
共 55 条
  • [1] Development of Electrolytes for Si-Graphite Composite Electrodes
    Cao Cuong Nguyen
    Lucht, Brett L.
    [J]. JOURNAL OF THE ELECTROCHEMICAL SOCIETY, 2018, 165 (10) : A2154 - A2161
  • [2] Effect of Dual-Salt Concentrated Electrolytes on the Electrochemical Performance of Silicon Nanoparticles
    Chang, Zeng-hua
    Li, Xiang
    Yun, Feng-ling
    Shao, Ze-chao
    Wu, Zhao-hui
    Wang, Jian-tao
    Lu, Shi-gang
    [J]. CHEMELECTROCHEM, 2020, 7 (05) : 1135 - 1141
  • [3] Cross-linked polymeric ionic liquids ion gel electrolytes by in situ radical polymerization
    Chen, Liya
    Fu, Jifang
    Lu, Qi
    Shi, Liyi
    Li, Mengmeng
    Dong, Linna
    Xu, Yufeng
    Jia, Rongrong
    [J]. CHEMICAL ENGINEERING JOURNAL, 2019, 378
  • [4] A metal-ion-chelating organogel electrolyte for Le Chatelier depression of Mn3+ disproportionation of lithium manganese oxide spinel
    Cho, Yoon-Gyo
    Jung, Seo-Hyun
    Joo, Se Hun
    Jeon, Yuju
    Kim, Minsoo
    Lee, Kyung Min
    Kim, Seungmin
    Park, Jong Mok
    Noh, Hyun Kuk
    Kim, Young-Soo
    Hong, Jung-Eui
    Jeon, Sang-Ik
    Kim, Taewon
    Kwak, Sang Kyu
    Kong, Hoyoul
    Song, Hyun-Kon
    [J]. JOURNAL OF MATERIALS CHEMISTRY A, 2018, 6 (45) : 22483 - 22488
  • [5] Gel/Solid Polymer Electrolytes Characterized by In Situ Gelation or Polymerization for Electrochemical Energy Systems
    Cho, Yoon-Gyo
    Hwang, Chihyun
    Cheong, Do Sol
    Kim, Young-Soo
    Song, Hyun-Kon
    [J]. ADVANCED MATERIALS, 2019, 31 (20)
  • [6] Performance Enhancing Electrolyte Additives for Lithium Ion Batteries with Silicon Anodes
    Dalavi, Swapnil
    Guduru, Pradeep
    Lucht, Brett L.
    [J]. JOURNAL OF THE ELECTROCHEMICAL SOCIETY, 2012, 159 (05) : A642 - A646
  • [7] Confronting the Challenges of Next-Generation Silicon Anode-Based Lithium-Ion Batteries: Role of Designer Electrolyte Additives and Polymeric Binders
    Eshetu, Gebrekidan Gebresilassie
    Figgemeier, Egbert
    [J]. CHEMSUSCHEM, 2019, 12 (12) : 2515 - 2539
  • [8] Solid-state lithium batteries: Safety and prospects
    Guo, Yong
    Wu, Shichao
    He, Yan-Bing
    Kang, Feiyu
    Chen, Liquan
    Li, Hong
    Yang, Quan-Hong
    [J]. ESCIENCE, 2022, 2 (02): : 138 - 163
  • [9] Insights into the Ionic Conduction Mechanism of Quasi-Solid Polymer Electrolytes through Multispectral Characterization
    He, Xin
    Ni, Youxuan
    Hou, Yunpeng
    Lu, Yong
    Jin, Song
    Li, Haixia
    Yan, Zhenhua
    Zhang, Kai
    Chen, Jun
    [J]. ANGEWANDTE CHEMIE-INTERNATIONAL EDITION, 2021, 60 (42) : 22672 - 22677
  • [10] High-Performance Silicon Anodes Enabled By Nonflammable Localized High-Concentration Electrolytes
    Jia, Haiping
    Zou, Lianfeng
    Gao, Peiyuan
    Cao, Xia
    Zhao, Wengao
    He, Yang
    Engelhard, Mark H.
    Burton, Sarah D.
    Wang, Hui
    Ren, Xiaodi
    Li, Qiuyan
    Yi, Ran
    Zhang, Xin
    Wang, Chongmin
    Xu, Zhijie
    Li, Xiaolin
    Zhang, Ji-Guang
    Xu, Wu
    [J]. ADVANCED ENERGY MATERIALS, 2019, 9 (31)