Taming Interfacial Ion‐Dipole Interactions With <i>d</i> ‐Orbital Delocalized Electron Catalysis Expediates Low‐Temperature Li Metal Batteries

J Jing Zhang F Fangqi Liu (Key Laboratory of Artificial Micro- and Nano-structures of Ministry of Education, School of Physics and Technology, Wuhan University 1 , Wuhan 430072,) R Rong He Q Qinghua Guan (-Lab & CAS Key Laboratory of Nanophotonic Materials and Devices) N Na Tian J Jian Wu Z Zhenjiang Cao S Shikai Yin (School of Materials Science and Engineering Xi'an University of Technology Xi'an 710048 China) Y Yongzheng Zhang (School of Textile & Clothing) L Lujie Jia (<i>i</i>‐Lab and CAS Key Laboratory of Nanophotonic Materials and Devices Suzhou Institute of Nano‐tech and Nano‐bionics Chinese Academy of Sciences Suzhou 215123 China) X Xifei Li C Caiyin You (School of Materials Science and Engineering Xi'an University of Technology Xi'an 710048 China) H Haitao Liu (State Key Laboratory of Anti-Infective Drug Discovery and Development, Guangdong Key Laboratory of Chiral Molecule and Drug Discovery, and School of Pharmaceutical Sciences) M Meinan Liu (-Lab & CAS Key Laboratory of Nanophotonic Materials and Devices) Y Yidong Miao (School of Materials and Chemical Engineering Xuzhou University of Technology Xuzhou 221018 China) H Hongzhen Lin (-Lab & CAS Key Laboratory of Nanophotonic Materials and Devices) J Jian Wang

Abstract

Abstract Low‐temperature lithium metal batteries (LT‐LMBs) are increasingly desired for higher energy density and longer lifespan. However, due to organic electrolyte solidification, LT‐LMBs are impeded by huge barriers resulting from the hindrance of larger solvation shells with strong ion‐dipole interactions, leading to depressive Li kinetics and severe dendrite formation. Herein, interfacial catalysis by constructing electron delocalization d ‐orbital metal oxides toward the ion‐dipole interactions is pioneered to accelerate the larger Li(solvents) x + dissociation under the low‐temperature environment. Specifically, various kinds of d ‐orbital metal oxides (M = Ti, V, Fe, Co) with oxygen defect modulation are systematically screened and investigated for breaking the ion‐dipole interactions, and the prototyped titanium oxide with adjustable electron delocalization behave the best, as confirmed by electrochemical and theoretical experiments. Consequently, optimized Li electrodes withstand environmental robustness from 25 to −50°C, and stabilize long‐term cycling up to 1800 h and high Coulombic efficiency without any short‐circuit under −20°C. The as‐fabricated Li–S full cell enables a high‐capacity retention of 88% at 0.2 C over 200 cycles, and the high‐loading Li‐LiNi 0.8 Co 0.1 Mn 0.1 O 2 cell (≈20 mg cm −2 ) demonstrates excellent capacity retention ≈100% under 0°C, providing a new guideline for adopting a catalytic strategy for achieving advanced LT‐LMBs.

Article Details

Volume / Issue Vol. 38, Issue 4
Published January 01, 2026
ISSN 0935-9648
Publisher Unknown Publisher

Journal Info

Advanced Materials

Unknown Publisher

ISSN: 0935-9648 Physical Sciences

Authors (17)

J

Jing Zhang

F

Fangqi Liu

Key Laboratory of Artificial Micro- and Nano-structures of Ministry of Education, School of Physics and Technology, Wuhan University 1 , Wuhan 430072,

R

Rong He

Q

Qinghua Guan

-Lab & CAS Key Laboratory of Nanophotonic Materials and Devices

N

Na Tian

J

Jian Wu

Z

Zhenjiang Cao

S

Shikai Yin

School of Materials Science and Engineering Xi'an University of Technology Xi'an 710048 China

Y

Yongzheng Zhang

School of Textile & Clothing

L

Lujie Jia

<i>i</i>‐Lab and CAS Key Laboratory of Nanophotonic Materials and Devices Suzhou Institute of Nano‐tech and Nano‐bionics Chinese Academy of Sciences Suzhou 215123 China

X

Xifei Li

C

Caiyin You

School of Materials Science and Engineering Xi'an University of Technology Xi'an 710048 China

H

Haitao Liu

State Key Laboratory of Anti-Infective Drug Discovery and Development, Guangdong Key Laboratory of Chiral Molecule and Drug Discovery, and School of Pharmaceutical Sciences

M

Meinan Liu

-Lab & CAS Key Laboratory of Nanophotonic Materials and Devices

Y

Yidong Miao

School of Materials and Chemical Engineering Xuzhou University of Technology Xuzhou 221018 China

H

Hongzhen Lin

-Lab & CAS Key Laboratory of Nanophotonic Materials and Devices

J

Jian Wang