Dynamic Self‐Organizing Lithium Bonds for High Energy Density Lithium Batteries

W Wenting Wang J Jiaxue Yu (State Key Laboratory of Coordination Chemistry Key Laboratory of High‐Performance Polymer Material and Technology of MOE Department of Polymer Science and Engineering School of Chemistry and Chemical Engineering Nanjing University Nanjing Jiangsu P. R. China) H Hongjiang Yu (State Key Laboratory of Coordination Chemistry Key Laboratory of High‐Performance Polymer Material and Technology of MOE Department of Polymer Science and Engineering School of Chemistry and Chemical Engineering Nanjing University Nanjing Jiangsu P. R. China) Y Yifan Li Z Zilin Ye (State Key Laboratory of Coordination Chemistry Key Laboratory of High‐Performance Polymer Material and Technology of MOE Department of Polymer Science and Engineering School of Chemistry and Chemical Engineering Nanjing University Nanjing Jiangsu P. R. China) D Deshuo Kong (State Key Laboratory of Coordination Chemistry Key Laboratory of High‐Performance Polymer Material and Technology of MOE Department of Polymer Science and Engineering School of Chemistry and Chemical Engineering Nanjing University Nanjing Jiangsu P. R. China) H Hongsen Zhu (State Key Laboratory of Coordination Chemistry Key Laboratory of High‐Performance Polymer Material and Technology of MOE Department of Polymer Science and Engineering School of Chemistry and Chemical Engineering Nanjing University Nanjing Jiangsu P. R. China) Q Qiuhong Zhang X Xudong Jia

Abstract

ABSTRACT To enhance the electrochemical performance of silicon electrodes, it is essential to comprehensively understand their underlying lithium storage mechanisms. Unfortunately, the vast diversity of silicon anode types and compositions complicates efforts to accurately predict and validate these reaction processes. Accordingly, a structurally well‐defined silicon‐based model compound is in great need. Thus, we select methacrylate polyhedral oligomeric silsesquioxane (MAPOSS) as the subject for studying the lithium‐silicon bonding mechanism due to its clear chemical structure and composition. Through detailed characterization of the morphological and chemical structural changes of MAPOSS before and after cycling, our results reveal an intriguing phenomenon: the synergistic interaction (here termed as “Dynamic Self‐Organizing Lithium Bonds”) between Si atoms in the core and carbonyl (C = O) groups in the side arms of MAPOSS promotes reversible dynamic Li + ions storage. Density functional theory simulations further support this deduction. Furthermore, MAPOSS is employed as a binder in graphite anodes after polymerization. At 0.2 C, the resulting half‐cell exhibits an impressive specific capacity exceeding 450 mAh g −1 over 250 cycles. This study demonstrates that the integration of MAPOSS into the full cell configuration allows for a reduction in the N/P ratio and is expected to improve the overall energy density of the battery.

Article Details

Volume / Issue Vol. 65, Issue 12
Published March 16, 2026
ISSN 1433-7851
Publisher Wiley

Journal Info

Angewandte Chemie International Edition

Wiley

ISSN: 1433-7851 Physical Sciences

Authors (9)

W

Wenting Wang

J

Jiaxue Yu

State Key Laboratory of Coordination Chemistry Key Laboratory of High‐Performance Polymer Material and Technology of MOE Department of Polymer Science and Engineering School of Chemistry and Chemical Engineering Nanjing University Nanjing Jiangsu P. R. China

H

Hongjiang Yu

State Key Laboratory of Coordination Chemistry Key Laboratory of High‐Performance Polymer Material and Technology of MOE Department of Polymer Science and Engineering School of Chemistry and Chemical Engineering Nanjing University Nanjing Jiangsu P. R. China

Y

Yifan Li

Z

Zilin Ye

State Key Laboratory of Coordination Chemistry Key Laboratory of High‐Performance Polymer Material and Technology of MOE Department of Polymer Science and Engineering School of Chemistry and Chemical Engineering Nanjing University Nanjing Jiangsu P. R. China

D

Deshuo Kong

State Key Laboratory of Coordination Chemistry Key Laboratory of High‐Performance Polymer Material and Technology of MOE Department of Polymer Science and Engineering School of Chemistry and Chemical Engineering Nanjing University Nanjing Jiangsu P. R. China

H

Hongsen Zhu

State Key Laboratory of Coordination Chemistry Key Laboratory of High‐Performance Polymer Material and Technology of MOE Department of Polymer Science and Engineering School of Chemistry and Chemical Engineering Nanjing University Nanjing Jiangsu P. R. China

Q

Qiuhong Zhang

X

Xudong Jia