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Promoting high-voltage stability through local lattice distortion of halide solid electrolytes

Author

Listed:
  • Zhenyou Song

    (Tongji University)

  • Tengrui Wang

    (Tongji University)

  • Hua Yang

    (Spallation Neutron Source Science Center
    Chinese Academy of Sciences)

  • Wang Hay Kan

    (Spallation Neutron Source Science Center
    Chinese Academy of Sciences)

  • Yuwei Chen

    (Tongji University)

  • Qian Yu

    (Tongji University)

  • Likuo Wang

    (Tongji University)

  • Yini Zhang

    (Tongji University)

  • Yiming Dai

    (Tongji University)

  • Huaican Chen

    (Spallation Neutron Source Science Center
    Chinese Academy of Sciences)

  • Wen Yin

    (Spallation Neutron Source Science Center
    Chinese Academy of Sciences)

  • Takashi Honda

    (High Energy Accelerator Research Organization (KEK)
    High Energy Accelerator Research Organization (KEK))

  • Maxim Avdeev

    (Australian Nuclear Science and Technology Organisation (ANSTO)
    University of Sydney)

  • Henghui Xu

    (Huazhong University of Science and Technology)

  • Jiwei Ma

    (Tongji University)

  • Yunhui Huang

    (Huazhong University of Science and Technology)

  • Wei Luo

    (Tongji University)

Abstract

Stable solid electrolytes are essential to high-safety and high-energy-density lithium batteries, especially for applications with high-voltage cathodes. In such conditions, solid electrolytes may experience severe oxidation, decomposition, and deactivation during charging at high voltages, leading to inadequate cycling performance and even cell failure. Here, we address the high-voltage limitation of halide solid electrolytes by introducing local lattice distortion to confine the distribution of Cl−, which effectively curbs kinetics of their oxidation. The confinement is realized by substituting In with multiple elements in Li3InCl6 to give a high-entropy Li2.75Y0.16Er0.16Yb0.16In0.25Zr0.25Cl6. Meanwhile, the lattice distortion promotes longer Li-Cl bonds, facilitating favorable activation of Li+. Our results show that this high-entropy halide electrolyte boosts the cycle stability of all-solid-state battery by 250% improvement over 500 cycles. In particular, the cell provides a higher discharge capacity of 185 mAh g−1 by increasing the charge cut-off voltage to 4.6 V at a small current rate of 0.2 C, which is more challenging to electrolytes|cathode stability. These findings deepen our understanding of high-entropy materials, advancing their use in energy-related applications.

Suggested Citation

  • Zhenyou Song & Tengrui Wang & Hua Yang & Wang Hay Kan & Yuwei Chen & Qian Yu & Likuo Wang & Yini Zhang & Yiming Dai & Huaican Chen & Wen Yin & Takashi Honda & Maxim Avdeev & Henghui Xu & Jiwei Ma & Yu, 2024. "Promoting high-voltage stability through local lattice distortion of halide solid electrolytes," Nature Communications, Nature, vol. 15(1), pages 1-9, December.
  • Handle: RePEc:nat:natcom:v:15:y:2024:i:1:d:10.1038_s41467-024-45864-1
    DOI: 10.1038/s41467-024-45864-1
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    1. Jijian Xu & Jiaxun Zhang & Travis P. Pollard & Qingdong Li & Sha Tan & Singyuk Hou & Hongli Wan & Fu Chen & Huixin He & Enyuan Hu & Kang Xu & Xiao-Qing Yang & Oleg Borodin & Chunsheng Wang, 2023. "Electrolyte design for Li-ion batteries under extreme operating conditions," Nature, Nature, vol. 614(7949), pages 694-700, February.
    2. Kai Wang & Qingyong Ren & Zhenqi Gu & Chaomin Duan & Jinzhu Wang & Feng Zhu & Yuanyuan Fu & Jipeng Hao & Jinfeng Zhu & Lunhua He & Chin-Wei Wang & Yingying Lu & Jie Ma & Cheng Ma, 2021. "A cost-effective and humidity-tolerant chloride solid electrolyte for lithium batteries," Nature Communications, Nature, vol. 12(1), pages 1-11, December.
    3. Fudong Han & Andrew S. Westover & Jie Yue & Xiulin Fan & Fei Wang & Miaofang Chi & Donovan N. Leonard & Nancy J. Dudney & Howard Wang & Chunsheng Wang, 2019. "High electronic conductivity as the origin of lithium dendrite formation within solid electrolytes," Nature Energy, Nature, vol. 4(3), pages 187-196, March.
    4. Jürgen Janek & Wolfgang G. Zeier, 2023. "Challenges in speeding up solid-state battery development," Nature Energy, Nature, vol. 8(3), pages 230-240, March.
    5. Laidong Zhou & Tong-Tong Zuo & Chun Yuen Kwok & Se Young Kim & Abdeljalil Assoud & Qiang Zhang & Jürgen Janek & Linda F. Nazar, 2022. "High areal capacity, long cycle life 4 V ceramic all-solid-state Li-ion batteries enabled by chloride solid electrolytes," Nature Energy, Nature, vol. 7(1), pages 83-93, January.
    6. Robert A. House & John-Joseph Marie & Miguel A. Pérez-Osorio & Gregory J. Rees & Edouard Boivin & Peter G. Bruce, 2021. "The role of O2 in O-redox cathodes for Li-ion batteries," Nature Energy, Nature, vol. 6(8), pages 781-789, August.
    7. Sung-Kyun Jung & Hyeokjo Gwon & Hyungsub Kim & Gabin Yoon & Dongki Shin & Jihyun Hong & Changhoon Jung & Ju-Sik Kim, 2022. "Unlocking the hidden chemical space in cubic-phase garnet solid electrolyte for efficient quasi-all-solid-state lithium batteries," Nature Communications, Nature, vol. 13(1), pages 1-13, December.
    8. Jürgen Janek & Wolfgang G. Zeier, 2016. "A solid future for battery development," Nature Energy, Nature, vol. 1(9), pages 1-4, September.
    9. Hiram Kwak & Jae-Seung Kim & Daseul Han & Jong Seok Kim & Juhyoun Park & Gihan Kwon & Seong-Min Bak & Unseon Heo & Changhyun Park & Hyun-Wook Lee & Kyung-Wan Nam & Dong-Hwa Seo & Yoon Seok Jung, 2023. "Boosting the interfacial superionic conduction of halide solid electrolytes for all-solid-state batteries," Nature Communications, Nature, vol. 14(1), pages 1-14, December.
    10. Lv Hu & Jinzhu Wang & Kai Wang & Zhenqi Gu & Zhiwei Xi & Hui Li & Fang Chen & Youxi Wang & Zhenyu Li & Cheng Ma, 2023. "A cost-effective, ionically conductive and compressible oxychloride solid-state electrolyte for stable all-solid-state lithium-based batteries," Nature Communications, Nature, vol. 14(1), pages 1-12, December.
    11. Yi-Chen Yin & Jing-Tian Yang & Jin-Da Luo & Gong-Xun Lu & Zhongyuan Huang & Jian-Ping Wang & Pai Li & Feng Li & Ye-Chao Wu & Te Tian & Yu-Feng Meng & Hong-Sheng Mo & Yong-Hui Song & Jun-Nan Yang & Li-, 2023. "A LaCl3-based lithium superionic conductor compatible with lithium metal," Nature, Nature, vol. 616(7955), pages 77-83, April.
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