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A solid-state battery capable of 180 C superfast charging and 100% energy retention at –30 °C

Research output: Journal Publications and ReviewsRGC 21 - Publication in refereed journalpeer-review

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Abstract

Solid-state electrolytes (SSEs) are being extensively researched as replacements for liquid electrolytes in future batteries. Despite significant advancements, there are still challenges in using SSEs, particularly in extreme conditions. This study presents a hydrated metal-organic ionic cocrystal (HMIC) solid-state ion conductor with a solvent-assisted ion transport mechanism suitable for extreme operating conditions. Through crystal engineering strategies, the adsorption capacity of HMIC for anions and water molecules can be regulated, thereby facilitating cation hopping transport and enhancing electrochemical stability. As a result, optimized HMIC shows exceptional properties, including an extraordinarily high Zn2+ transference number (tZn2+ = 0.81), an expanded electrochemical stability window (~2.6 V), and an exceptionally high Zn2+ ion conductivity (8.6 mS cm–1, 25 °C). Interface dynamics analysis indicates that this strong binding to water molecules can significantly reduce the desolvation energy barrier and enhance the ionic diffusion coefficient. (10 to 100 times higher than that in aqueous electrolytes). This allows Zn|| Prussian blue analog batteries to exhibit impressive fast-charging performance (180 C, 20 s, over 1,000 charge/discharge cycles) and maintain 100% discharge capacity retention and discharge plateau from –30 to 30 °C. The development of HMICs with a solvent-assisted hopping mechanism provides a promising path for solid-state zinc-ion batteries in extreme conditions, including fast charging, low temperature, and high loading. © 2025 the Author(s).
Original languageEnglish
Article numbere2511121122
Number of pages10
JournalProceedings of the National Academy of Sciences of the United States of America
Volume122
Issue number38
Online published8 Sept 2025
DOIs
Publication statusPublished - 23 Sept 2025

Funding

The work described in this paper was partially supported by a grant from the Research Grants Council of the Hong Kong Special Administrative Region, China (Project No. CityU C1002-21G). This work was supported in part by InnoHK Project on (Project 1.4 - Flexible and Stretchable Technologies for monitoring of cardiovascular disease risk factors: Soft Battery and self-powered, flexible medical devices) at Hong Kong Centre for Cerebro-cardiovascular Health Engineering.

Research Keywords

  • low temperature
  • solid-state electrolyte
  • superfast charging

Publisher's Copyright Statement

  • COPYRIGHT TERMS OF DEPOSITED FINAL PUBLISHED VERSION FILE: This full text is made available under CC-BY-NC-ND 4.0. https://creativecommons.org/licenses/by-nc-nd/4.0/

RGC Funding Information

  • RGC-funded

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