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Operando monitoring of thermal runaway in commercial lithium-ion cells via advanced lab-on-fiber technologies

Author

Listed:
  • Wenxin Mei

    (University of Science and Technology of China)

  • Zhi Liu

    (Jinan University)

  • Chengdong Wang

    (University of Science and Technology of China)

  • Chuang Wu

    (Jinan University)

  • Yubin Liu

    (Jinan University)

  • Pengjie Liu

    (University of Science and Technology of China)

  • Xudong Xia

    (Jinan University)

  • Xiaobin Xue

    (Jinan University)

  • Xile Han

    (Jinan University)

  • Jinhua Sun

    (University of Science and Technology of China)

  • Gaozhi Xiao

    (National Research Council of Canada)

  • Hwa-yaw Tam

    (The Hong Kong Polytechnic University, Kowloon)

  • Jacques Albert

    (Carleton University)

  • Qingsong Wang

    (University of Science and Technology of China)

  • Tuan Guo

    (Jinan University)

Abstract

Operando monitoring of complex physical and chemical activities inside rechargeable lithium-ion batteries during thermal runaway is critical to understanding thermal runaway mechanisms and giving early warning of safety-related failure. However, most existing sensors cannot survive during such extremely hazardous thermal runaway processes (temperature up to 500 °C accompanied by fire and explosion). To address this, we develop a compact and multifunctional optical fiber sensor (12 mm in length and 125 µm in diameter) capable of insertion into commercial 18650 cells to continuously monitor internal temperature and pressure effects during cell thermal runaway. We observe a stable and reproducible correlation between the cell thermal runaway and the optical response. The sensor’s signal shows two internal pressure peaks corresponding to safety venting and initiation of thermal runaway. Further analysis reveals that a scalable solution for predicting imminent thermal runaway is the detection of the abrupt turning range of the differential curves of cell temperature and pressure, which corresponds to an internal transformation between the cell reversible and irreversible reactions. By raising an alert even before safety venting, this new operando measurement tool can provide crucial capabilities in cell safety assessment and warning of thermal runaway.

Suggested Citation

  • Wenxin Mei & Zhi Liu & Chengdong Wang & Chuang Wu & Yubin Liu & Pengjie Liu & Xudong Xia & Xiaobin Xue & Xile Han & Jinhua Sun & Gaozhi Xiao & Hwa-yaw Tam & Jacques Albert & Qingsong Wang & Tuan Guo, 2023. "Operando monitoring of thermal runaway in commercial lithium-ion cells via advanced lab-on-fiber technologies," Nature Communications, Nature, vol. 14(1), pages 1-12, December.
  • Handle: RePEc:nat:natcom:v:14:y:2023:i:1:d:10.1038_s41467-023-40995-3
    DOI: 10.1038/s41467-023-40995-3
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    References listed on IDEAS

    as
    1. Runlin Wang & Haozhe Zhang & Qiyu Liu & Fu Liu & Xile Han & Xiaoqing Liu & Kaiwei Li & Gaozhi Xiao & Jacques Albert & Xihong Lu & Tuan Guo, 2022. "Operando monitoring of ion activities in aqueous batteries with plasmonic fiber-optic sensors," Nature Communications, Nature, vol. 13(1), pages 1-11, December.
    2. Jiaqiang Huang & Steven T. Boles & Jean-Marie Tarascon, 2022. "Sensing as the key to battery lifetime and sustainability," Nature Sustainability, Nature, vol. 5(3), pages 194-204, March.
    3. M. Armand & J.-M. Tarascon, 2008. "Building better batteries," Nature, Nature, vol. 451(7179), pages 652-657, February.
    4. Jiaqiang Huang & Laura Albero Blanquer & Julien Bonefacino & E. R. Logan & Daniel Alves Dalla Corte & Charles Delacourt & Betar M. Gallant & Steven T. Boles & J. R. Dahn & Hwa-Yaw Tam & Jean-Marie Tar, 2020. "Operando decoding of chemical and thermal events in commercial Na(Li)-ion cells via optical sensors," Nature Energy, Nature, vol. 5(9), pages 674-683, September.
    5. Ermanno Miele & Wesley M. Dose & Ilya Manyakin & Michael H. Frosz & Zachary Ruff & Michael F. L. Volder & Clare P. Grey & Jeremy J. Baumberg & Tijmen G. Euser, 2022. "Hollow-core optical fibre sensors for operando Raman spectroscopy investigation of Li-ion battery liquid electrolytes," Nature Communications, Nature, vol. 13(1), pages 1-10, December.
    6. Richard Schmuch & Ralf Wagner & Gerhard Hörpel & Tobias Placke & Martin Winter, 2018. "Performance and cost of materials for lithium-based rechargeable automotive batteries," Nature Energy, Nature, vol. 3(4), pages 267-278, April.
    7. Said, Ahmed O. & Lee, Christopher & Stoliarov, Stanislav I. & Marshall, André W., 2019. "Comprehensive analysis of dynamics and hazards associated with cascading failure in 18650 lithium ion cell arrays," Applied Energy, Elsevier, vol. 248(C), pages 415-428.
    8. Jianhui Wang & Yuki Yamada & Keitaro Sodeyama & Eriko Watanabe & Koji Takada & Yoshitaka Tateyama & Atsuo Yamada, 2018. "Fire-extinguishing organic electrolytes for safe batteries," Nature Energy, Nature, vol. 3(1), pages 22-29, January.
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