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A sodium superionic chloride electrolyte driven by paddle wheel mechanism for solid state batteries

Author

Listed:
  • Rui Li

    (Shenzhen Campus of Sun Yat-sen University
    Sun Yat-sen University
    Ltd)

  • Kaiqi Xu

    (Ltd
    Ltd.)

  • Shenhao Wen

    (Shenzhen Campus of Sun Yat-sen University
    Sun Yat-sen University)

  • Xiaohan Tang

    (Chinese Academy of Sciences)

  • Zheyu Lin

    (Shenzhen Campus of Sun Yat-sen University
    Sun Yat-sen University)

  • Xia Guo

    (Shenzhen Campus of Sun Yat-sen University
    Sun Yat-sen University)

  • Maxim Avdeev

    (Australian Centre for Neutron Scattering, Australian Nuclear Science and Technology Organisation)

  • Zhizhen Zhang

    (Shenzhen Campus of Sun Yat-sen University
    Sun Yat-sen University)

  • Yong-Sheng Hu

    (Chinese Academy of Sciences)

Abstract

Halides are promising solid electrolytes due to their high ionic conductivity and high oxidation potential. Here we report a superionic chloride material, NaTaCl6, which exhibits a high ionic conductivity of 3.3 mS cm−1 at 27 °C, being two-orders of magnitude higher than that of NaNbCl6 (0.01 mS cm−1). The considerably higher conductivity exhibited by NaTaCl6 vs. NaNbCl6 arises from the more facile rotational/reorientational dynamics of the [TaCl6] polyanions in comparison to the [NbCl6] anions. [TaCl6] polyanion rotation is readily activated while [NbCl6] polyanion reorientation is hindered at room temperature but can be turned on as the temperature increases or under prolonged mechanical milling. The higher degree of structural disorder exhibited by NaTaCl6 compared to NaNbCl6—likely attributed to its greater mechanical and phonon softness—is found to contribute to the more pronounced [TaCl6] anion rotation. Anion rotation is coupled with, and facilitates, macroscopic Na+-ion diffusion. As a result, enhanced rotational dynamics are directly correlated with the higher Na+-ion conductivity observed in NaTaCl6. The high ionic conductivity, combined with its electrochemical stability against positive electrode materials, enables good rate capability and long-term cycling performance in solid-state cells. These findings provide insights into ion transport mechanism in the newly emerging halide solid electrolytes.

Suggested Citation

  • Rui Li & Kaiqi Xu & Shenhao Wen & Xiaohan Tang & Zheyu Lin & Xia Guo & Maxim Avdeev & Zhizhen Zhang & Yong-Sheng Hu, 2025. "A sodium superionic chloride electrolyte driven by paddle wheel mechanism for solid state batteries," Nature Communications, Nature, vol. 16(1), pages 1-18, December.
  • Handle: RePEc:nat:natcom:v:16:y:2025:i:1:d:10.1038_s41467-025-61738-6
    DOI: 10.1038/s41467-025-61738-6
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    References listed on IDEAS

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    1. Simon Randau & Dominik A. Weber & Olaf Kötz & Raimund Koerver & Philipp Braun & André Weber & Ellen Ivers-Tiffée & Torben Adermann & Jörn Kulisch & Wolfgang G. Zeier & Felix H. Richter & Jürgen Janek, 2020. "Benchmarking the performance of all-solid-state lithium batteries," Nature Energy, Nature, vol. 5(3), pages 259-270, March.
    2. Erik A. Wu & Swastika Banerjee & Hanmei Tang & Peter M. Richardson & Jean-Marie Doux & Ji Qi & Zhuoying Zhu & Antonin Grenier & Yixuan Li & Enyue Zhao & Grayson Deysher & Elias Sebti & Han Nguyen & Ry, 2021. "A stable cathode-solid electrolyte composite for high-voltage, long-cycle-life solid-state sodium-ion batteries," Nature Communications, Nature, vol. 12(1), pages 1-11, December.
    3. Jürgen Janek & Wolfgang G. Zeier, 2016. "A solid future for battery development," Nature Energy, Nature, vol. 1(9), pages 1-4, September.
    4. Akitoshi Hayashi & Kousuke Noi & Atsushi Sakuda & Masahiro Tatsumisago, 2012. "Superionic glass-ceramic electrolytes for room-temperature rechargeable sodium batteries," Nature Communications, Nature, vol. 3(1), pages 1-5, January.
    5. Tao Dai & Siyuan Wu & Yaxiang Lu & Yang Yang & Yuan Liu & Chao Chang & Xiaohui Rong & Ruijuan Xiao & Junmei Zhao & Yanhui Liu & Weihua Wang & Liquan Chen & Yong-Sheng Hu, 2023. "Inorganic glass electrolytes with polymer-like viscoelasticity," Nature Energy, Nature, vol. 8(11), pages 1221-1228, November.
    6. 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.
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