z-logo
Premium
Formulating Electrophilic Electrolyte for In Situ Stabilization of 4.8 V Li‐Rich Batteries with 100% Initial Coulombic Efficiency
Author(s) -
Zhang Anping,
Bi Zhihong,
Yang Endian,
Chen Tongle,
Li Xiaofeng,
Liao Shihao,
Wang Gongrui,
Yu Yan,
Bao Xinhe,
Wu ZhongShuai
Publication year - 2025
Publication title -
angewandte chemie international edition
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 5.831
H-Index - 550
eISSN - 1521-3773
pISSN - 1433-7851
DOI - 10.1002/anie.202502603
Subject(s) - faraday efficiency , electrolyte , in situ , electrophile , chemistry , materials science , electrode , organic chemistry , catalysis
Abstract Lithium‐rich layered oxide (LLO) cathodes are expected to overcome the energy density limitations, but their applicability is hindered by low initial Coulombic efficiency (ICE) and unstable electrode‐electrolyte interphases with sluggish kinetics. Here an elaborate electrophilic electrolyte is proposed that effectively stabilizes the surface lattice oxygen of the LLO cathode, facilitates the formation of dense and fast‐ion‐transport electrode‐electrolyte interphases, and prevents Li‐dendrites on the anode. The nucleophilic reaction mechanism driven by the electrolyte enables LLO to exhibit a reversible capacity of 310 mAh g −1 with a record ICE of 100%, as well as impressive 3C fast‐charging stability, remarkably superior to that in the basic electrolyte. Using this engineered electrolyte, the assembled 4.5 Ah‐class pouch cell of graphite||LLO displays high energy density and remarkable reversibility during cycling, demonstrating wide applicability. This work provides valuable insights and pragmatic strategies in electrolyte chemical engineering for advancing high‐energy density and fast‐charging batteries.

This content is not available in your region!

Continue researching here.

Having issues? You can contact us here
Empowering knowledge with every search

Address

John Eccles House
Robert Robinson Avenue,
Oxford Science Park, Oxford
OX4 4GP, United Kingdom