Rocksalt high entropy oxide–enabled enhancement of redox kinetics in room-temperature sodium–sulfur batteries

As a next-generation energy storage technology, room temperature sodium sulfur (RT-NaS) batteries offer higher energy density, lower cost and raw material abundance compared to lithium-ion batteries. However, major challenges impeding practical applications are polysulfide shuttling and sluggish redox kinetics. High entropy oxides exhibit a complex atomic distribution with multiple cations in a sublattice. This unique structural arrangement contributes to improved chemical stability and multiple active sites, which facilitate the effective trapping of sodium polysulfides (Na-PS). Herein, we study a rocksalt high entropy oxide, (Co,Cu,Mg,Ni,Zn)O (R-HEO) as a functional interlayer in a RT-NaS battery. The R-HEO interlayer facilitates adsorption of Na-PS and electrocatalytically promotes polysulfide conversion. Consequently, the cell featuring R-HEO interlayer demonstrates an initial reversible specific capacity of 998 mAh g −1 at 0.1 C, with a remarkable capacity retention of 93.2% after 200 cycles at 0.2 C. XPS, FTIR spectroscopy and density functional theory (DFT) calculations are used to study the nature of interactions between R-HEO and Na-PS. The enhanced electrochemical performance can be ascribed to the efficient confinement of Na-PS and the formation of polythionate complexes. These factors contribute to strong binding with soluble species and facilitate accelerated reaction kinetics, leading to superior electrochemical properties.

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Publication Details

Journal
Journal of Power Sources
Published
2026-09-12
DOI
https://doi.org/10.1016/j.jpowsour.2026.241465
Primary Topic
Advanced Battery Materials and Technologies
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article
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article

Rocksalt high entropy oxide–enabled enhancement of redox kinetics in room-temperature sodium–sulfur batteries

Subramshu S. Bhattacharya, Manu Jaiswal, Sundara Ramaprabhu, Tanwir Ansari et al.
Journal of Power Sources
Advanced Battery Materials and Technologies
article

Rocksalt high entropy oxide–enabled enhancement of redox kinetics in room-temperature sodium–sulfur batteries

Subramshu S. Bhattacharya, Manu Jaiswal, Sundara Ramaprabhu, Tanwir Ansari, Y. Sai Swaroop Sarma
article en

Abstract

As a next-generation energy storage technology, room temperature sodium sulfur (RT-NaS) batteries offer higher energy density, lower cost and raw material abundance compared to lithium-ion batteries. However, major challenges impeding practical applications are polysulfide shuttling and sluggish redox kinetics. High entropy oxides exhibit a complex atomic distribution with multiple cations in a sublattice. This unique structural arrangement contributes to improved chemical stability and multiple active sites, which facilitate the effective trapping of sodium polysulfides (Na-PS). Herein, we study a rocksalt high entropy oxide, (Co,Cu,Mg,Ni,Zn)O (R-HEO) as a functional interlayer in a RT-NaS battery. The R-HEO interlayer facilitates adsorption of Na-PS and electrocatalytically promotes polysulfide conversion. Consequently, the cell featuring R-HEO interlayer demonstrates an initial reversible specific capacity of 998 mAh g −1 at 0.1 C, with a remarkable capacity retention of 93.2% after 200 cycles at 0.2 C. XPS, FTIR spectroscopy and density functional theory (DFT) calculations are used to study the nature of interactions between R-HEO and Na-PS. The enhanced electrochemical performance can be ascribed to the efficient confinement of Na-PS and the formation of polythionate complexes. These factors contribute to strong binding with soluble species and facilitate accelerated reaction kinetics, leading to superior electrochemical properties.

Journal of Power SourcesVol. 696
University of Madras (IN), Indian Institute of Technology Madras (IN)
Affordable and clean energy
Openalex Percentile: Top 20%
Advanced Battery Materials and Technologies
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Rocksalt high entropy oxide–enabled enhancement of redox kinetics in room-temperature sodium–sulfur batteries — Subramshu S. Bhattacharya, Manu Jaiswal, et al. · Journal of Power Sources (2026) | TGRS Research Map | TGRS