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Mitigating reaction heterogeneity in Li-rich layered cathodes through surface-phase regulation enabled by tailored concentration gradients engineering

  • Yujia Wu
  • , Yuefeng Su
  • , Jinyang Dong
  • , Yun Lu
  • , Jianan Hao
  • , Huiquan Che
  • , Teng Yang
  • , Yiya Wang
  • , Ning Li
  • , Yibiao Guan
  • , Feng Wu
  • , Lai Chen*
  • *此作品的通讯作者
  • Beijing Institute of Technology
  • State Grid Corporation of China

科研成果: 期刊稿件文章同行评审

摘要

Lithium-rich layered oxides are promising cathodes for high-energy lithium-ion batteries, yet their applications are hindered by voltage decay, structural instability, and heterogeneous reaction dynamics. These degradations stem from the coexistence of Li2MnO3 and LiMO2 domains, which exhibit distinct redox kinetics and trigger phase mismatch during cycling. To address this challenge, we propose a tailored concentration gradient design that regulates the spatial distribution of transition metals. Nickel is intentionally enriched near the surface while manganese dominates the interior, creating a coordinated balance between interfacial stability and bulk capacity retention. Regulating Ni content deliberately induces a moderate Li/Ni cation-mixed phase, and the tailored gradient builds a surface composite structure that stabilizes the layered framework and suppresses interfacial degradation. This architecture homogenizes redox activation, alleviates surface–bulk reaction mismatch, and retards the formation of spinel or rock-salt phases. Structural characterizations with in situ and ex situ methods confirm coherent variations in composition and valence states. Electrochemical analyses demonstrate suppressed voltage hysteresis, smaller polarization, and enhanced cycling stability. Simulations further verify homogeneous ion transport with stabilized phase evolution, collectively validating that surface-phase regulation enabled by tailored concentration gradients effectively mitigates reaction heterogeneity in Li-rich layered cathodes. The findings highlight surface-phase regulation enabled by tailored concentration gradients as a scalable strategy that mitigates reaction heterogeneity in lithium-rich layered cathodes and extends applicability to other cathode systems for large-scale energy storage.

源语言英语
期刊Green Energy and Environment
DOI
出版状态已接受/待刊 - 2026

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