Enhanced Internal Magnetic Field for Long‐Cycle NCM‐Li All‐Solid‐State Batteries via Dual‐Inhibition of Anode Dendrite and Cathode Cation Disorder

H Hui Ding (Abteilung Struktur und Nano-/Mikromechanik von Materialien) H Haoqing Tian (State Key Laboratory of Chemical Resource Engineering Beijing University of Chemical Technology Beijing P. R. China) J Jing Shi W Wenna Li H Haochen Gong X Xu Liang G Gugu Li (College of Mathematics and Physics Beijing University of Chemical Technology Beijing P. R. China) M Mingxiang Huang (College of Mathematics and Physics Beijing University of Chemical Technology Beijing P. R. China) M Mengxin Ren (The Key Laboratory of Weak‐Light Nonlinear Photonics Ministry of Education School of Physics and TEDA Applied Physics Institute Nankai University Tianjin P. R. China) Y Yang Wu (Hefei National Research Center for Physical Science at Microscale) J Jie Sun W Wensheng Yang (Engineering Research Center for Nanomaterials Henan University Kaifeng People's Republic of China)

Abstract

ABSTRACT Solid‐state batteries, which incorporate a Li metal anode and a high‐voltage Ni‐rich layered oxide (LiNi x Co y Mn 1–x–y O 2 , x ≥ 0.8) (NCM) cathode, offer the promise of high energy density for next‐generation batteries. Although solid‐state electrolytes are anticipated to enhance safety and performance over conventional liquid‐state electrolytes, they still fail to prevent non‐uniform lithium deposition on the anode surface. Moreover, while solid‐state electrolytes can partially suppress parasitic reactions at the cathode‐electrolyte interface, mitigating structural degradation caused by Li/Ni antisite disorder remains challenging. Herein, we demonstrate a two‐orders‐of‐magnitude enhancement in the internal magnetic field during battery cycling by incorporating Fe 3 O 4 nanorods within the solid electrolyte. The strengthened magnetic field alters the deposition behavior of lithium ions on the anode via the magnetohydrodynamic effect and, concurrently, suppresses the structural degradation of the cathode by regulating the spin state of Ni 3 + . The enhanced internal magnetic field applies throughout the entire life of the NCM||Li all‐solid‐state battery, improving its cycling stability. Unlike external magnetic fields, this internal approach requires no complex equipment and avoids integration challenges.

Article Details

Volume / Issue Vol. 38, Issue 31
Published June 01, 2026
ISSN 0935-9648
Publisher Unknown Publisher

Journal Info

Advanced Materials

Unknown Publisher

ISSN: 0935-9648 Physical Sciences

Authors (12)

H

Hui Ding

Abteilung Struktur und Nano-/Mikromechanik von Materialien

H

Haoqing Tian

State Key Laboratory of Chemical Resource Engineering Beijing University of Chemical Technology Beijing P. R. China

J

Jing Shi

W

Wenna Li

H

Haochen Gong

X

Xu Liang

G

Gugu Li

College of Mathematics and Physics Beijing University of Chemical Technology Beijing P. R. China

M

Mingxiang Huang

College of Mathematics and Physics Beijing University of Chemical Technology Beijing P. R. China

M

Mengxin Ren

The Key Laboratory of Weak‐Light Nonlinear Photonics Ministry of Education School of Physics and TEDA Applied Physics Institute Nankai University Tianjin P. R. China

Y

Yang Wu

Hefei National Research Center for Physical Science at Microscale

J

Jie Sun

W

Wensheng Yang

Engineering Research Center for Nanomaterials Henan University Kaifeng People's Republic of China