Thermodynamically stable lithium silicides and germanides from density-functional theory calculations
Abstract
Density-functional-theory (DFT) calculations have been performed on the Li-Si and Li-Ge systems. Lithiated Si and Ge, including their metastable phases, play an important technological r\^ole as Li-ion battery (LIB) anodes. The calculations comprise structural optimisations on crystal structures obtained by swapping atomic species to Li-Si and Li-Ge from the X-Y structures in the International Crystal Structure Database, where X={Li,Na,K,Rb,Cs} and Y={Si,Ge,Sn,Pb}. To complement this at various Li-Si and Li-Ge stoichiometries, ab initio random structure searching (AIRSS) was also performed. Between the ground-state stoichiometries, including the recently found LiSi phase, the average voltages were calculated, indicating that germanium may be a safer alternative to silicon anodes in LIB, due to its higher lithium insertion voltage. Calculations predict high-density LiSi and LiGe layered phases which become the ground state above 2.5 and 5 GPa respectively and reveal silicon and germanium's propensity to form dumbbells in the LiSi, stoichiometry range. DFT predicts the stability of the LiGe , LiGe and LiGe phases and several new Li-Ge compounds, with stoichiometries LiGe, LiGe, LiGe and LiGe.
Cite
@article{arxiv.1402.6233,
title = {Thermodynamically stable lithium silicides and germanides from density-functional theory calculations},
author = {Andrew J. Morris and C. P. Grey and C. J Pickard},
journal= {arXiv preprint arXiv:1402.6233},
year = {2015}
}
Comments
10 pages, 5 figures