Modulating Lewis Acidity of Covalent Organic Frameworks to Boost Li <sup>+</sup> Transport

W Wenwei Li C Cuiping Luo (National Center for International Joint Research of Photoelectric Energy Materials and Application International Joint Research Center for Advanced Energy Materials of Yunnan Province School of Materials and Energy Yunnan University Kunming China) F Fanyu Xie (National Center for International Joint Research of Photoelectric Energy Materials and Application International Joint Research Center for Advanced Energy Materials of Yunnan Province School of Materials and Energy Yunnan University Kunming China) H Hongjia Liu (National Center for International Joint Research of Photoelectric Energy Materials and Application International Joint Research Center for Advanced Energy Materials of Yunnan Province School of Materials and Energy Yunnan University Kunming China) Y Yufeng Fan (Department of Land Resources and Urban Development Management, School of Public Policy and Administration, Chongqing University) J Jie Cui (Shanghai Sci-Tech Inno Center for Infection and Immunity, National Medical Center for Infectious Diseases, Huashan Hospital, Institute of Infection and Health, Fudan University) Q Qi An Z Zhenhuan Zhang G Genfu Zhao H Hong Guo

Abstract

ABSTRACT Solid polymer electrolytes offer a promising route to safer lithium metal batteries, but strong Li + –TFSI – coupling and insufficient salt dissociation limit their room‐temperature conductivity. Introducing Lewis acidic sites to competitively bind TFSI – can release Li + , yet the relationship between local Lewis acid–base regulation and ion transport remains unclear. Here, we tune the local Lewis acid–base environment of olefin‐linked pyridinium ionic covalent organic frameworks by exchanging counteranions from Br – to BF 4 – , PF 6 – , and TFSI – . Comprehensive results show that charge‐delocalized, weakly coordinating counteranions reduce screening of pyridinium cations, enhancing effective Lewis acidity and weakening Li + –TFSI – coupling. Consequently, ICOF‐TFSI@PVDF‐HFP achieves an ionic conductivity of 9.1 × 10 – 4 S·cm – 1 together with a Li + transference number of 0.81. The electrolyte enables stable Li||Li cycling over 6500 h, retaining 84.3% capacity after 650 cycles at 1 C in Li||LFP cells and 81.7% after 400 cycles at 1 C in Li||NCM90. Molecular dynamics, Raman spectroscopy, and operando characterizations confirm enhanced salt dissociation, regulated interfacial chemistry, dendrite suppression, and mitigated microcracking in high‐Ni cathodes. This study defines local Lewis acid–base regulation as a molecular design strategy for SPEs featuring fast Li + transport and robust interfacial stability.

Article Details

Volume / Issue Vol. 1, Issue 1
Published August 05, 2026
ISSN 1433-7851
Publisher Wiley

Journal Info

Angewandte Chemie International Edition

Wiley

ISSN: 1433-7851 Physical Sciences

Authors (10)

W

Wenwei Li

C

Cuiping Luo

National Center for International Joint Research of Photoelectric Energy Materials and Application International Joint Research Center for Advanced Energy Materials of Yunnan Province School of Materials and Energy Yunnan University Kunming China

F

Fanyu Xie

National Center for International Joint Research of Photoelectric Energy Materials and Application International Joint Research Center for Advanced Energy Materials of Yunnan Province School of Materials and Energy Yunnan University Kunming China

H

Hongjia Liu

National Center for International Joint Research of Photoelectric Energy Materials and Application International Joint Research Center for Advanced Energy Materials of Yunnan Province School of Materials and Energy Yunnan University Kunming China

Y

Yufeng Fan

Department of Land Resources and Urban Development Management, School of Public Policy and Administration, Chongqing University

J

Jie Cui

Shanghai Sci-Tech Inno Center for Infection and Immunity, National Medical Center for Infectious Diseases, Huashan Hospital, Institute of Infection and Health, Fudan University

Q

Qi An

Z

Zhenhuan Zhang

G

Genfu Zhao

H

Hong Guo