Thiourea-derived coating enabled lithium-rich manganese oxide positive electrode in solid-state batteries

法拉第效率 材料科学 电极 氧化物 涂层 氧化锰 化学工程 电化学 表面改性 降级(电信) 析氧 图层(电子) 储能 氧化钴 纳米技术 无机化学 容量损失 比能量
作者
Feng Jin,Wenguang Zhao,Ingeborg Sellæg Ellingsen,Henrik Rotvær Bratlie,Quoc Hung Nguyen,Dragos Stoian,Kenneth Marshall,Wouter van der Beek,Per Erik Vullum,Manuel Dillenz,Jose Maria Castillo Robles,Juan Maria Garcia Lastra,Ivano Eligio Castelli,Feng Pan,Günther J. Redhammer,Daniel Rettenwander
出处
期刊:Nature Communications [Nature Portfolio]
标识
DOI:10.1038/s41467-026-75215-1
摘要

Abstract Solid-state batteries employing lithium-rich manganese oxide positive electrodes are a highly promising candidate for next-generation high-energy-density energy storage systems. However, the practical deployment of lithium-rich manganese oxide positive electrodes is hindered by several critical challenges, including poor initial-cycle reversibility, rapid capacity decay, structural collapse due to oxygen release, and interfacial instability at high potentials. Here, we introduce a thiourea-derived surface modification strategy for lithium-rich manganese oxide positive electrodes, which significantly enhances the electrochemical performance of solid-state batteries (SSBs). The modified lithium-rich manganese oxide positive electrodes exhibit an initial discharge capacity of 220.2 mAh g −1 , an initial Coulombic efficiency of 84.83 %, and capacity retention of 97 % after 600 cycles at 1 C under 4.6 V (vs. Li + /Li). The improved cycling performance is shown to be attributed to a dual modification of lithium-rich manganese oxide particles, i.e., the application of sub-nm-thick S-rich coating layer and formation of a spinel-like structure in the surface near proximity, which prevents oxygen-related degradation and accelerates Li + transport, respectively. These findings present a scalable surface modification strategy that potentially addresses key limitations of lithium-rich manganese oxide-based SSBs, paving the way for the development of stable, high-energy-density batteries.
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