Harnessing Rapid Li <sup>+</sup> /H <sup>δ+</sup> Exchange within the Electric Double Layer for High Performance Li‐Ion Batteries

Z Zhuangzhuang Cui D Dazhuang Wang J Jun Ma J Jiasen Guo (School of Chemistry and Materials Science University of Science and Technology of China Anhui 230026 China) L Liang Li Q Qingshun Nian (Department of Materials Science and Engineering, City University of Hong Kong, 83 Tat Chee Avenue, Kowloon, Hong Kong 999077, China) D Digen Ruan B Binjie Zhong (Hefei National Research Center for Physical Sciences at the Microscale CAS Key Laboratory of Materials for Energy Conversion Department of Materials Science and Engineering University of Science and Technology of China Hefei Anhui 230026 China) J Jiajia Fan Z Zihong Wang J Jiacheng Yang (Clinical Research Center, Sichuan Kelun-Biotech Biopharmaceutical, Chengdu, China) X Xuan Luo (Institute of Materials Research, Tsinghua Shenzhen International Graduate School) Q Qi Dong (Department of Chemistry) X Xing Ou S Shuhong Jiao (State Key Laboratory of Precision and Intelligent Chemistry) R Ruiguo Cao (State Key Laboratory of Precision and Intelligent Chemistry, School of Chemistry and Materials Science) X Xiaodi Ren

Abstract

Abstract The electric double layer (EDL) plays a pivotal role in governing interfacial composition and electrode behavior in electrochemical systems. However, the intricate relationship between EDL architectures and electrochemical processes remains elusive. Here the fundamental significance of hydrogen bond polarity within the EDL in orchestrating the interfacial lithium‐ions (Li + ) exchange dynamics is elucidated. At charged interfaces, the electropositive aprotic hydrogen (H δ+ ) and Li + ions exhibit comparable electrostatic responses, resulting in their competitive effect for the solvent oxygen sites, which modulates the de‐solvation process and ultimately impacts battery performance. Based on this, a solvent‐centered de‐solvation mechanism is proposed, wherein the microenvironment with enhanced hydrogen polarity in the EDL facilitates solvent displacement from Li + coordination shells. Furthermore, the presence of polar hydrogen at charged cathode interface can effectively anchor uncoordinated solvents molecules, increasing the energy barrier for detrimental dehydrogenation reaction. As a result, electrolytes design based on this strategy enables remarkable electrochemical stability, achieving over 2000 cycles in a 5 V dual‐ion battery. In addition, the Gr||NCM811 pouch cell exhibits exceptional longevity, retaining 90.2% of its initial capacity after 1000 cycles.

Article Details

Volume / Issue Vol. 37, Issue 41
Published October 01, 2025
ISSN 0935-9648
Publisher Unknown Publisher

Journal Info

Advanced Materials

Unknown Publisher

ISSN: 0935-9648 Physical Sciences

Authors (17)

Z

Zhuangzhuang Cui

D

Dazhuang Wang

J

Jun Ma

J

Jiasen Guo

School of Chemistry and Materials Science University of Science and Technology of China Anhui 230026 China

L

Liang Li

Q

Qingshun Nian

Department of Materials Science and Engineering, City University of Hong Kong, 83 Tat Chee Avenue, Kowloon, Hong Kong 999077, China

D

Digen Ruan

B

Binjie Zhong

Hefei National Research Center for Physical Sciences at the Microscale CAS Key Laboratory of Materials for Energy Conversion Department of Materials Science and Engineering University of Science and Technology of China Hefei Anhui 230026 China

J

Jiajia Fan

Z

Zihong Wang

J

Jiacheng Yang

Clinical Research Center, Sichuan Kelun-Biotech Biopharmaceutical, Chengdu, China

X

Xuan Luo

Institute of Materials Research, Tsinghua Shenzhen International Graduate School

Q

Qi Dong

Department of Chemistry

X

Xing Ou

S

Shuhong Jiao

State Key Laboratory of Precision and Intelligent Chemistry

R

Ruiguo Cao

State Key Laboratory of Precision and Intelligent Chemistry, School of Chemistry and Materials Science

X

Xiaodi Ren