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Optimized In Situ Doping Strategy Stabling Single-Crystal Ultrahigh-Nickel Layered Cathode Materials

  • Wei Wang
  • , Yanan Zhou
  • , Bao Zhang
  • , Weiyuan Huang
  • , Lei Cheng
  • , Jing Wang
  • , Xinyou He
  • , Lei Yu
  • , Zhiming Xiao
  • , Jianguo Wen
  • , Tongchao Liu*
  • , Khalil Amine*
  • , Xing Ou*
  • *此作品的通讯作者
  • School of Metallurgy and Environment
  • Zhejiang Power New Energy Co. Ltd.
  • Argonne National Laboratory

科研成果: 期刊稿件文章同行评审

摘要

Single-crystal Ni-rich cathodes offer promising prospects in mitigating intergranular microcracks and side reaction issues commonly encountered in conventional polycrystalline cathodes. However, the utilization of micrometer-sized single-crystal particles has raised concerns about sluggish Li+ diffusion kinetics and unfavorable structural degradation, particularly in high Ni content cathodes. Herein, we present an innovative in situ doping strategy to regulate the dominant growth of characteristic planes in the single-crystal precursor, leading to enhanced mechanical properties and effectively tackling the challenges posed by ultrahigh-nickel layered cathodes. Compared with the traditional dry-doping method, our in situ doping approach possesses a more homogeneous and consistent modifying effect from the inside out, ensuring the uniform distribution of doping ions with large radius (Nb, Zr, W, etc). This mitigates the generally unsatisfactory substitution effect, thereby minimizing undesirable coating layers induced by different solubilities during the calcination process. Additionally, the uniformly dispersed ions from this in situ doping are beneficial for alleviating the two-phase coexistence of H2/H3 and optimizing the Li+ concentration gradient during cycling, thus inhibiting the formation of intragranular cracks and interfacial deterioration. Consequently, the in situ doped cathodes demonstrate exceptional cycle retention and rate performance under various harsh testing conditions. Our optimized in situ doping strategy not only expands the application prospects of elemental doping but also offers a promising research direction for developing high-energy-density single-crystal cathodes with extended lifetime.

源语言英语
页(从-至)8002-8016
页数15
期刊ACS Nano
18
11
DOI
出版状态已出版 - 19 3月 2024
已对外发布

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