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Unveil the Failure of Alkali Ion-Sulfur Aqueous Batteries: Resolving Water Migration by Coordination Regulation

  • Xiaoyu Yu (Co-first Author)
  • , Yutong Feng (Co-first Author)
  • , Jiazhuang Tian
  • , Xin Liu
  • , Boya Wang
  • , Yanyan Zhang
  • , Tengsheng Zhang
  • , Gaoyang Li
  • , Xinran Li
  • , Hongrun Jin
  • , Wanhai Zhou
  • , Wei Li
  • , Zhiyuan Zeng
  • , Laiquan Li
  • , Dongyuan Zhao
  • , Dongliang Chao*
  • *Corresponding author for this work

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

Abstract

Sulfur aqueous battery (SAB) is promising owing to its high theoretical capacity and cost competitiveness. Although decoupled electrolyte design has successfully endowed transition metal ion-SABs with customizability to achieve high energy density, its effectiveness in alkali ion-SABs remains problematic. Here, we identify for the first time an intractable phenomenon of alkali-ion-driven water migration between decoupled electrolytes through ex situ NMR, which is recognized as the origin of the irreversible sulfur redox reactions. To address the challenge, we propose an alkali-ion-H2O-poor coordination strategy to effectively regulate water migration by incorporating low molecular polarity index (MPI) anions. In situ Raman, synchrotron spectroscopy, and molecule dynamic simulations reveal that the repulsion of low MPI anions to water effectively disrupts the hydration patterns around the alkali cations, and thereby minimizes the concomitant water migration. The elaborated Na+-SAB achieved an ultrahigh capacity of 1634 mAh g−1 (97.7% sulfur utilization) and prolonged stability over 500 cycles. Furthermore, the versatility of the alkali-ion-H2O-poor coordination strategy is further substantiated in Li+-SAB and K+-SAB batteries, boosting the scope of the following SAB systems. © 2025 Wiley-VCH GmbH.
Original languageEnglish
Article numbere202503138
JournalAngewandte Chemie - International Edition
Volume64
Issue number19
Online published3 Mar 2025
DOIs
Publication statusPublished - 5 May 2025

Research Keywords

  • Alkali ion-sulfur
  • Aqueous battery
  • Coordination regulation
  • Molecular polarity index
  • Water migration

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