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Zhejun Li

Professor
Supervisor of Doctorate Candidates
Supervisor of Master's Candidates


Gender:Female
Education Level:With Certificate of Graduation for Doctorate Study
School/Department:School of Physics and Technology
Business Address:Room B214, School of Physics and Technology, Wuhan University, Wuhan, Hubei, China
Contact Information:zhejunli@whu.edu.cn
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Current position: Home >> Scientific Research >> Paper Publications

Xie C, Lin L., Mu Z., Liu F., Chen S., and Li Z.*, Beyond Surface Catalysis: Dynamic Cation-Regulated Interfacial Water Gating for Aqueous Polysulfide Electrochemistry

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DOI number:10.1002/anie.6113925

Journal:Angewandte Chemie International Edition

Abstract:Aqueous sulfur electrochemistry holds great promise for high-energy density storage but is currently constrained by sluggish redox kinetics and severe polarization. Despite extensive efforts in catalyst design to enhance polysulfide adsorption, kinetic improvements have largely plateaued, suggesting that localized surface-active sites are no longer the primary bottleneck. By transcending the conventional focus on surface-active sites, we identify a fundamental kinetic limitation governed by the electrical double layer (EDL) structure, which has been largely overlooked as a passive background. We propose a generalizable framework of interfacial water gating, wherein electrolyte cations dynamically modulate the hydrogen-bond network and electrostatic shielding within the EDL to regulate polysulfide accessibility. By integrating operando UV–visible spectroscopy and in situ attenuated total reflection surface-enhanced infrared absorption spectroscopy (ATR-SEIRAS), we reveal a cation-hydration-mediated, volcano-type dependence of redox kinetics on cation concentration, dictated by the competition between electrostatic cation-shielding and steric interfacial congestion. Our findings redefine interfacial water as a dynamic tunable medium and a participatory component of the redox reaction. This work shifts the focus from localized surface catalysis to global EDL regulation, providing molecular-level guidance for overcoming kinetic limits in multivalent aqueous electrochemical systems.

Indexed by:Journal paper

Document Code:http://doi.org/10.1002/anie.6113925

Volume:e6113925

Translation or Not:no

Date of Publication:2026-08-22

Included Journals:SCI

Links to published journals:http://doi.org/10.1002/anie.6113925