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February 11, 2026Angewandte Chemie International Edition4 citationsOpen Access

Modulating Electron Delocalization Structure in Covalent Organic Frameworks Through Conjugation and Hybridization to Boost Li‐ion Migration Dynamics

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YYYongxin YangKZKun ZengYFYan Feng

Key Points

  • The aim is to enhance lithium-ion migration dynamics in polymer electrolytes by regulating electron cloud distribution.
  • Incorporated p–π conjugation and B–O sp2 hybridization into covalent organic frameworks (COFs).
  • Grafted perfluoroalkyl groups to improve electron regulation and match high-voltage cathodes.
  • Assessed the electrochemical performance of solid-state batteries with the modified electrolytes.
  • Significant improvement in lithium migration kinetics in the modified polymer electrolytes.
  • Reduction in localized electron accumulation leading to decreased lithium dendrite growth.
  • Overall enhancement in electrochemical performance of solid-state batteries using the COFs-modified electrolytes.

Abstract

ABSTRACT The inherent factors influencing the growth of lithium (Li) dendrites and the kinetics of Li + migration in polymer electrolytes lie in the electron cloud density distribution in the electrolyte. Localized electrons accumulation can trigger the uneven Li + deposition, ultimately leading to battery failure. To address this critical challenge, the concept of p–π conjugation and B–O sp 2 hybridization is innovatively incorporated into covalent organic frameworks (COFs) to mitigate local interfacial Li + accumulation and improve Li + migration kinetics in electrolytes by electron delocalization. Furthermore, perfluoroalkyl group with virtues of superior electron regulating capabilities and improved electrochemical‐window, is strategically grafted to better match high‐voltage cathodes. Under the synergistic role of electron regulation, the electrolyte with pπ–sp 2 ‐COF significantly improves overall electrochemical performance of solid‐state batteries. Thus, regulating electron density via p‐π conjugation and B‐O sp 2 hybridization promises to open new avenues for the development of COFs‐modified polymer electrolytes in solid‐state batteries.

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Cite This Study

Yang et al. (2026) studied this question.

synapsesocial.com/papers/698c1bdc267fb587c655dd9bhttps://doi.org/10.1002/anie.202525864
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