Designing and mapping cascade catalysis pathway for balanced polysulfide conversion in Li-S batteries

L Leyuan Zhang (Department of Materials Science and Engineering) D Dongfang Cheng (Department of Chemical and Biomolecular Engineering) P Pu Zhang (Department of Materials Science and Engineering) D David G. Hopkinson Z Zhaozong Wang A Ao Zhang C Chen Li (Sibley School of Mechanical and Aerospace Engineering, Cornell University, Ithaca, NY, USA.) R Ran Wang R Rongli Liu C Christopher S. Allen J Johanna Nelson Weker (Stanford Synchrotron Radiation Lightsource) Y Yu Huang P Philippe Sautet (Department of Chemical and Biomolecular Engineering) X Xiangfeng Duan

Abstract

Abstract Lithium–sulfur batteries are fundamentally constrained by the sluggish 16-electron sulfur reduction reaction. Electrocatalytic sulfur reduction reaction is inherently complex, involving multiple lithium polysulfide intermediates (Li 2 S n , n  = 2–8), each with distinct adsorption and activation requirements, leading to unbalanced polysulfide conversion and severe shuttle effect. Although cascade catalysis has been proposed as a potential solution, the precise pathway and its mechanistic role in regulating polysulfide conversion remain elusive. Here we elucidate and experimentally validate the complete cascade pathway of sulfur reduction on Fe,N,S-codoped holey graphene as a model catalyst. Density functional theory reveals that Fe sites preferentially bind and activate long-chain polysulfides, while N,S-C sites accelerate the conversion of Li 2 S 4 to Li 2 S 2 /Li 2 S. Such site-specific synergy balances sulfur reduction kinetics and suppresses polysulfide accumulation. Combined kinetic analysis and operando Raman spectroscopy directly reveal how synergistic cascade catalysis governs the reaction pathway, modulates key intermediates, and enables balanced polysulfide conversion. Together, these results establish cascade catalysis as a mechanism-driven design strategy for lithium–sulfur battery electrodes, where regulation of the reaction pathway suppresses polysulfide shuttling and enables enhanced cycling stability.

Article Details

Volume / Issue Vol. 1, Issue 1
Published July 01, 2026
ISSN 2041-1723
Publisher Nature Portfolio

Journal Info

Nature Communications

Nature Portfolio

ISSN: 2041-1723 Open Access Life Sciences

Authors (14)

L

Leyuan Zhang

Department of Materials Science and Engineering

D

Dongfang Cheng

Department of Chemical and Biomolecular Engineering

P

Pu Zhang

Department of Materials Science and Engineering

D

David G. Hopkinson

Z

Zhaozong Wang

A

Ao Zhang

C

Chen Li

Sibley School of Mechanical and Aerospace Engineering, Cornell University, Ithaca, NY, USA.

R

Ran Wang

R

Rongli Liu

C

Christopher S. Allen

J

Johanna Nelson Weker

Stanford Synchrotron Radiation Lightsource

Y

Yu Huang

P

Philippe Sautet

Department of Chemical and Biomolecular Engineering

X

Xiangfeng Duan