In Situ Embedded Catalytic Sites Accelerate Redox Kinetics for High‐Performance Sodium–Sulfur Batteries

H Hongchang Hao (Department of Materials Science and Engineering) S Sathya Narayanan Jagadeesan (SLAC‐Stanford Battery Center SLAC National Accelerator Laboratory Menlo Park California USA) N Nikhil Rampal (Chemical Sciences Division) Z Zaichun Liu (Department of Materials Science and Engineering) P Pawel Czaja (Department of Materials Science and Engineering Stanford University Stanford California USA) X Xintong Yuan (Department of Chemical and Biomolecular Engineering) H Hao Lyu (Department of Chemical Engineering) Y Yukio Cho (Stanford University , , , ,) J Jinlei Li (Department of Materials Science and Engineering) N Navina Kalvakaalva (SLAC‐Stanford Battery Center SLAC National Accelerator Laboratory Menlo Park California USA) L Liwen F. Wan Y Yi Cui J Jagjit Nanda (Department of Materials Science and Engineering) X Xueli Zheng (Department of Materials Science and Engineering)

Abstract

ABSTRACT Sodium–sulfur (Na–S) batteries are hindered by sluggish sulfur conversion kinetics and polysulfides dissolution. Although catalysts are widely introduced to improve kinetics, the crucial question persists in how catalytic sites can be effectively accessible to polysulfides especially when pursuing a highly confined sulfur redox pathway. Here we bring catalyst accessibility into focus and demonstrate that a synthetic strategy based on in situ embedded catalytic sites maximizes catalytic accessibility and efficiency. Through a bottom‐up, precursor‐integrated host synthesis route, we in situ embedded Nb 2 O 5 catalyst into carbon nanotubes in parallel with formation of extensive nanoporosity. Subsequent sulfur impregnation yields a cathode structure (I‐Nb 2 O 5 @C–S) featuring abundant catalyst–pore–sulfur triple‐phase interfaces. As a result, I‐Nb 2 O 5 @C−S delivers among the most promising sulfur utilization in literature, achieving 1540 mAh g −1 at 0.1 C, and 1044 mAh g −1 at 3 C with a low‐capacity decay of 0.027% per cycle over 1500 cycles. In contrast, a counterpart with spatially isolated Nb 2 O 5 and sulfur exhibits deficient catalytic accessibility and negligible improvement in sulfur redox kinetics. Kinetic diagnostics, combined with niobium K‐edge and operando sulfur K‐edge x‐ray absorption spectroscopy, reveal that direct accessibility of catalytic sites to sulfur is essential for synergizing polysulfide confinement and kinetic improvement.

Article Details

Volume / Issue Vol. 1, Issue 1
Published August 12, 2026
ISSN 0935-9648
Publisher Unknown Publisher

Journal Info

Advanced Materials

Unknown Publisher

ISSN: 0935-9648 Physical Sciences

Authors (14)

H

Hongchang Hao

Department of Materials Science and Engineering

S

Sathya Narayanan Jagadeesan

SLAC‐Stanford Battery Center SLAC National Accelerator Laboratory Menlo Park California USA

N

Nikhil Rampal

Chemical Sciences Division

Z

Zaichun Liu

Department of Materials Science and Engineering

P

Pawel Czaja

Department of Materials Science and Engineering Stanford University Stanford California USA

X

Xintong Yuan

Department of Chemical and Biomolecular Engineering

H

Hao Lyu

Department of Chemical Engineering

Y

Yukio Cho

Stanford University , , , ,

J

Jinlei Li

Department of Materials Science and Engineering

N

Navina Kalvakaalva

SLAC‐Stanford Battery Center SLAC National Accelerator Laboratory Menlo Park California USA

L

Liwen F. Wan

Y

Yi Cui

J

Jagjit Nanda

Department of Materials Science and Engineering

X

Xueli Zheng

Department of Materials Science and Engineering