English

Hidden structural order controls Li-ion transport in cation-disordered oxides for rechargeable lithium batteries

Materials Science 2019-03-06 v1

Abstract

Crystal structures play a vital role in determining materials properties. In Li-ion cathodes, the crystal structure defines the dimensionality and connectivity of interstitial sites, thus determining Li-ion diffusion kinetics. While a perfect crystal has infinite structural coherence, a class of recently discovered high-capacity cathodes, Li-excess cation-disordered rocksalts, falls on the other end of the spectrum: Their cation sublattices are assumed to be randomly populated by Li and transition metal ions with zero configurational coherence based on conventional X-ray diffraction, such that the Li transport is purely determined by statistical effects. In contrast to this prevailing view, we reveal that cation short-range order, hidden in diffraction, is ubiquitous in these long-range disordered materials and controls the local and macroscopic environments for Li-ion transport. Our work not only discovers a crucial property that has previously been overlooked, but also provides new guidelines for designing and engineering disordered rocksalts cathode materials.

Keywords

Cite

@article{arxiv.1806.06096,
  title  = {Hidden structural order controls Li-ion transport in cation-disordered oxides for rechargeable lithium batteries},
  author = {Huiwen Ji and Alexander Urban and Daniil A. Kitchaev and Deok-Hwang Kwon and Nongnuch Artrith and Colin Ophus and Wenxuan Huang and Zijian Cai and Tan Shi and Jae Chul Kim and Gerbrand Ceder},
  journal= {arXiv preprint arXiv:1806.06096},
  year   = {2019}
}