Spatial Electric Field Effect‐Driven Efficient Sulfur Reduction Reaction

H Haoshen Liang (School of Chemical Engineering and Light Industry Guangdong University of Technology Guangzhou P. R. China) W Wenzhi Huang (School of Chemical Engineering and Light Industry Guangdong University of Technology Guangzhou P. R. China) Z Zexin Su (School of Chemical Engineering and Light Industry Guangdong University of Technology Guangzhou People's Republic of China) Q Qiangqiang Xia (School of Chemical Engineering and Light Industry Guangdong University of Technology Guangzhou P. R. China) T Tiyang Xiao (School of Chemical Engineering and Light Industry Guangdong University of Technology Guangzhou People's Republic of China) Y Ying Song (College of Physics Science and Technology) K Kai Wan (Guangdong Provincial Key Laboratory of Fuel Cell Technology School of Chemistry and Chemical Engineering South China University of Technology Guangzhou People's Republic of China) Y Yufa Feng (School of Chemistry and Materials Engineering Guangdong Provincial Key Laboratory for Electronic Functional Materials and Devices Huizhou University Huizhou P. R. China) K Kaixiang Shi H Hao Li Q Quanbing Liu

Abstract

ABSTRACT The uncontrolled diffusion of soluble polysulfides and their unregulated deposition of Li 2 S are key causes of capacity decay and reduced Coulombic efficiency in lithium–sulfur batteries (LSBs). Here, we construct a hollow urchin‐like NiCo 2 O 4‐x Se x framework featuring high‐curvature tips and a selenization‐derived gradient outer layer, and introduce a synergistic regulation mechanism that couples spatial electric‐field effects with electronic‐structure modulation. The localized electric field induced by high‐curvature tips drives polysulfides and Li + to preferentially accumulate toward the tip regions along a potential gradient and initiates rapid interfacial conversion. Meanwhile, Se regulation optimizes the electronic structure of Co sites, which strengthens Co─S interactions and renders the polarization and cleavage of S─S bonds. As a result, the polysulfide reaction pathway is transformed from disordered diffusion into a spatially vectorial process: conversion is initiated at the tips, propagated within the inner layer, and finalized by controlled deposition on the inner side, effectively suppressing the shuttle effect and preventing rapid surface accumulation of Li 2 S. Benefiting from this strategy, the cells deliver outstanding electrochemical performance under high‐rate operation, prolonged cycling, and high sulfur loading. This work demonstrates that synergistic spatial electric‐field engineering converts complex multistep interfacial reactions into a controllable spatial reaction process, offering a new avenue for LSBs.

Article Details

Volume / Issue Vol. 38, Issue 47
Published August 01, 2026
ISSN 0935-9648
Publisher Unknown Publisher

Journal Info

Advanced Materials

Unknown Publisher

ISSN: 0935-9648 Physical Sciences

Authors (11)

H

Haoshen Liang

School of Chemical Engineering and Light Industry Guangdong University of Technology Guangzhou P. R. China

W

Wenzhi Huang

School of Chemical Engineering and Light Industry Guangdong University of Technology Guangzhou P. R. China

Z

Zexin Su

School of Chemical Engineering and Light Industry Guangdong University of Technology Guangzhou People's Republic of China

Q

Qiangqiang Xia

School of Chemical Engineering and Light Industry Guangdong University of Technology Guangzhou P. R. China

T

Tiyang Xiao

School of Chemical Engineering and Light Industry Guangdong University of Technology Guangzhou People's Republic of China

Y

Ying Song

College of Physics Science and Technology

K

Kai Wan

Guangdong Provincial Key Laboratory of Fuel Cell Technology School of Chemistry and Chemical Engineering South China University of Technology Guangzhou People's Republic of China

Y

Yufa Feng

School of Chemistry and Materials Engineering Guangdong Provincial Key Laboratory for Electronic Functional Materials and Devices Huizhou University Huizhou P. R. China

K

Kaixiang Shi

H

Hao Li

Q

Quanbing Liu