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April 8, 2026ACS Energy Letters2 citations

Strategic Synthetic Pathway for Tailoring the Crystallographic and Microstructural Evolution of Cathode Materials for Li-Ion Batteries

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MSMin-gyu SeoSHSang-Mun HanHJHyoung-Jun Jo

Key Points

  • The research aims to develop a Ni-rich cathode material with optimized lithiation and microstructural properties for lithium-ion batteries.
  • Proposed a two-step calcination protocol decoupling lithiation from structural evolution.
  • Performed intermediate-temperature lithiation followed by high-temperature calcination with Nb doping.
  • Fabricated a unique cathode structure with fine, radially aligned primary particles.
  • Achieved a unique multiphase structure with rocksalt nanodomains in a layered matrix.
  • Facilitated a reversible spinel-like transformation that provides efficient lithium diffusion pathways.
  • Demonstrated long-term power stability under harsh Urban Air Mobility flight profiles.

Abstract

Urban air mobility (UAM) demands a Ni-rich cathode to balance the energy density, power, and stability; however, the synthesis of the cathode material struggles to optimize lithiation and the microstructure owing to the conflicting thermal requirements. Herein, we propose a strategic two-step calcination protocol that functionally decouples lithiation from structural evolution. Via a sequential process of intermediate-temperature lithiation, followed by cooling and high-temperature calcination with Nb doping to control the structural evolution, we fabricated a cathode material comprising fine, radially aligned primary particles. This strategy retarded complete phase transformation, establishing a unique multiphase structure, wherein rocksalt nanodomains coexisted within a layered matrix. This intentionally preserved intermediate phase facilitated a reversible spinel-like transformation upon charging, providing three-dimensional Li diffusion pathways. The optimized cathode demonstrated long-term power stability under harsh UAM flight profiles. This study presents a systematic approach for tailoring the physicochemical properties by precisely controlling the reaction pathway.

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Cite This Study

Seo et al. (2026) studied this question.

synapsesocial.com/papers/69d5f0d774eaea4b11a7a374https://doi.org/10.1021/acsenergylett.6c00663
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