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April 12, 2026ACS Nano2 citations

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

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CYChangchun YeGZGaige ZhangZSZhangsheng Shi

Key Points

  • This research aims to improve the structural stability and performance of lithium-rich oxide cathodes through a novel quenching approach.
  • Quenching high-temperature lithium-rich oxides in a MgCl2 solution.
  • Formation of a spinel/disorder heterostructure to stabilize the structure.
  • Evaluation of the impact on cycling and rate performance.
  • Quenching significantly enhances cycling stability and rate performance of Li-rich cathodes.
  • Formation of a spinel phase promotes efficient Li+ transport.
  • The structural modifications effectively suppress irreversible oxygen release.

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.

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Cite This Study

Ye et al. (2026) studied this question.

synapsesocial.com/papers/69db380f4fe01fead37c62bbhttps://doi.org/10.1021/acsnano.6c01279
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Also Consider

Synapse has enriched 5 closely related papers on similar clinical questions. Consider them for comparative context:

  1. 1Stabilizing Lattice Oxygen Redox Through Bicarbonate Pyrolysis‐Driven Multifunctional Interface Engineering in Li‐Rich Layered Oxides2026
  2. 2Constructing Li-O-Vacancy Configuration Coupling with a Layered/Spinel Mixed Structure in Li-Deficient Li-Rich Layered Oxides to Realize Stable Oxygen Redox2026
  3. 3Structurally Order‐Disorder‐Amorphous Gradient Interface Toward Extended‐Temperature‐Range Li‐Rich Layered Cathodes2026
  4. 4In Situ Atomic Arrangement and Defect Engineering of Li-Rich Cathodes for Interface Stabilization2026
  5. 5Complex‐Concentrated Anion Doping Enables Ultra‐Stable Lattice Oxygen and Structural Integrity in Lithium‐Rich Layered Oxide Cathodes2026 · 6 citations