Tailored ordering enables high-capacity cathode materials

Fuente: arXiv
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Main Authors: Liu, Tzu-chen, Salgado-Casanova, Adolfo, Yubuchi, So, Baldassarri, Bianca, Aykol, Muratahan, Yoshida, Jun, Yamasaki, Hisatsugu, Zhu, Yizhou, Torrisi, Steven B., Wolverton, Christopher
Format: Preprint
Published: 2025
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author Liu, Tzu-chen
Salgado-Casanova, Adolfo
Yubuchi, So
Baldassarri, Bianca
Aykol, Muratahan
Yoshida, Jun
Yamasaki, Hisatsugu
Zhu, Yizhou
Torrisi, Steven B.
Wolverton, Christopher
author_facet Liu, Tzu-chen
Salgado-Casanova, Adolfo
Yubuchi, So
Baldassarri, Bianca
Aykol, Muratahan
Yoshida, Jun
Yamasaki, Hisatsugu
Zhu, Yizhou
Torrisi, Steven B.
Wolverton, Christopher
contents Newly designed Li-ion battery cathode materials with high capacity and greater flexibility in chemical composition will be critical for the growing electric vehicles market. Cathode structures with cation disorder were once considered suboptimal, but recent demonstrations have highlighted their potential in Li$_{1+x}$M$_{1-x}$O$_{2}$ chemistries with a wide range of metal combinations M. By relaxing the strict requirements of maintaining ordered Li diffusion pathways, countless multi-metal compositions in LiMO$_2$ may become viable, aiding the quest for high-capacity cobalt-free cathodes. A challenge presented by this freedom in composition space is designing compositions which possess specific, tailored types of both long- and short-range orderings, which can ensure both phase stability and Li diffusion. However, the combinatorial complexity associated with local cation environments impedes the development of general design guidelines for favorable orderings. Here we propose ordering design frameworks from computational ordering descriptors, which in tandem with low-cost heuristics and elemental statistics can be used to simultaneously achieve compositions that possess favorable phase stability as well as configurations amenable to Li diffusion. Utilizing this computational framework, validated through multiple successful synthesis and characterization experiments, we not only demonstrate the design of LiCr$_{0.75}$Fe$_{0.25}$O$_2$, showcasing initial charge capacity of 234 mAhg$^{-1}$ and 320 mAhg$^{-1}$ in its 20% Li-excess variant Li$_{1.2}$Cr$_{0.6}$Fe$_{0.2}$O$_2$, but also present the elemental ordering statistics for 32 elements, informed by one of the most extensive first-principles studies of ordering tendencies known to us.
format Preprint
id arxiv_https___arxiv_org_abs_2506_12545
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Tailored ordering enables high-capacity cathode materials
Liu, Tzu-chen
Salgado-Casanova, Adolfo
Yubuchi, So
Baldassarri, Bianca
Aykol, Muratahan
Yoshida, Jun
Yamasaki, Hisatsugu
Zhu, Yizhou
Torrisi, Steven B.
Wolverton, Christopher
Materials Science
Newly designed Li-ion battery cathode materials with high capacity and greater flexibility in chemical composition will be critical for the growing electric vehicles market. Cathode structures with cation disorder were once considered suboptimal, but recent demonstrations have highlighted their potential in Li$_{1+x}$M$_{1-x}$O$_{2}$ chemistries with a wide range of metal combinations M. By relaxing the strict requirements of maintaining ordered Li diffusion pathways, countless multi-metal compositions in LiMO$_2$ may become viable, aiding the quest for high-capacity cobalt-free cathodes. A challenge presented by this freedom in composition space is designing compositions which possess specific, tailored types of both long- and short-range orderings, which can ensure both phase stability and Li diffusion. However, the combinatorial complexity associated with local cation environments impedes the development of general design guidelines for favorable orderings. Here we propose ordering design frameworks from computational ordering descriptors, which in tandem with low-cost heuristics and elemental statistics can be used to simultaneously achieve compositions that possess favorable phase stability as well as configurations amenable to Li diffusion. Utilizing this computational framework, validated through multiple successful synthesis and characterization experiments, we not only demonstrate the design of LiCr$_{0.75}$Fe$_{0.25}$O$_2$, showcasing initial charge capacity of 234 mAhg$^{-1}$ and 320 mAhg$^{-1}$ in its 20% Li-excess variant Li$_{1.2}$Cr$_{0.6}$Fe$_{0.2}$O$_2$, but also present the elemental ordering statistics for 32 elements, informed by one of the most extensive first-principles studies of ordering tendencies known to us.
title Tailored ordering enables high-capacity cathode materials
topic Materials Science
url https://arxiv.org/abs/2506.12545