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Quenching-Induced Spinel/Disorder Heterostructure for Stabilized Li-Rich Cathodes

  • Changchun Ye
  • , Gaige Zhang
  • , Zhangsheng Shi
  • , Zhipeng Yu
  • , Jin Yang
  • , Yunpeng Zuo
  • , Wanfeng Yang
  • , Zhenghui Pan*
  • , Yajie Liu*
  • , Xin Wang*
  • , Zhixin Tai*
  • *Corresponding author for this work

Research output: Journal Publications and ReviewsRGC 21 - Publication in refereed journalpeer-review

Abstract

Lithium-rich oxide (LRO) cathodes are considered promising candidates for next-generation lithium-ion batteries due to their low cost and high capacity but face challenges of cyclic decay caused by irreversible oxygen loss and structural degradation. Herein, a spinel/disorder heterostructure attached to the LRO surface is demonstrated by quenching high-temperature LROs in a MgCl2 solution, based on the quenching regulation mechanism discovered from a thermodynamic perspective. High-temperature calcination promotes lattice expansion, weakens metal–oxygen bonds, and generates significant lattice distortion and defects. These metastable structures are effectively preserved by rapid cooling and further optimized by the MgCl2 solution, ultimately forming a spinel/disorder heterostructure enriched with abundant defects and Mg doping on the LRO surface. This multifunctional interface enhances structural stability and improves the reversibility of oxygen-anion redox reactions, effectively suppressing irreversible oxygen release and interface side reactions. Moreover, the increased d-layer spacing-coupled spinel phase promotes Li+ transport, and the quenching-induced Mg doping and Li/O vacancies synergistically stabilize the bulk with an optimized electronic structure. Therefore, the modified LRO has a significantly improved cycling and rate performance as well as suppressed self-discharge. These findings deepen the understanding of quenching engineering of nanomaterials and demonstrate the feasibility of optimizing Li-rich cathodes through a spinel/disorder heterostructure for sustainable energy storage. © 2026 American Chemical Society
Original languageEnglish
Pages (from-to)11921-11932
JournalACS Nano
Volume20
Issue number15
Online published10 Apr 2026
DOIs
Publication statusPublished - 21 Apr 2026

Funding

This work was supported by the China Postdoctoral Science Foundation (2023M741208, 2024T 170282), National Natural Science Foundation of China (Nos. 22508065, 52401296, 22308261, 22578337), and the International Training program for Young Talents of Guangdong Province and partially financed by the Key Project of Basic and Applied Basic Research of Jiangmen City (Grant No. 2320002001062), Guangdong Basic and Applied Basic Research Foundation (Grant No. 2022A1515110877), Jiangsu Future Membrane Technology Innovation Center (No. BM2021804), and Guangdong Provincial Pearl River Talents Program (Grant No. 2023CX10L019). X.W. would like to acknowledge grants from the City University of Hong Kong (Grant Nos. 9020005, 7020103), General Research Fund (Project No. 9043720) from the Research Grants Council of Hong Kong SAR, China, and ITF-RTH Global STEM Professorship (9446008).

UN SDGs

This output contributes to the following UN Sustainable Development Goals (SDGs)

  1. SDG 7 - Affordable and Clean Energy
    SDG 7 Affordable and Clean Energy

Research Keywords

  • heterostructure
  • Li-rich oxide
  • lithium-ion battery
  • quenching
  • spinel/disorder

RGC Funding Information

  • RGC-funded

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