English

Unraveling the effects of inter-site Hubbard interactions in spinel Li-ion cathode materials

Materials Science 2023-03-30 v2

Abstract

Accurate first-principles predictions of the structural, electronic, magnetic, and electrochemical properties of cathode materials can be key in the design of novel efficient Li-ion batteries. Spinel-type cathode materials Lix_xMn2_2O4_4 and Lix_xMn1.5_{1.5}Ni0.5_{0.5}O4_4 are promising candidates for Li-ion battery technologies, but they present serious challenges when it comes to their first-principles modeling. Here, we use density-functional theory with extended Hubbard functionals - DFT+UU+VV with on-site UU and inter-site VV Hubbard interactions - to study the properties of these transition-metal oxides. The Hubbard parameters are computed from first-principles using density-functional perturbation theory. We show that while UU is crucial to obtain the right trends in properties of these materials, VV is essential for a quantitative description of the structural and electronic properties, as well as the Li-intercalation voltages. This work paves the way for reliable first-principles studies of other families of cathode materials without relying on empirical fitting or calibration procedures.

Keywords

Cite

@article{arxiv.2301.11143,
  title  = {Unraveling the effects of inter-site Hubbard interactions in spinel Li-ion cathode materials},
  author = {Iurii Timrov and Michele Kotiuga and Nicola Marzari},
  journal= {arXiv preprint arXiv:2301.11143},
  year   = {2023}
}