English

Structure prediction of stable sodium germanides at 0 and 10 GPa

Materials Science 2024-02-26 v1

Abstract

In this work we used ab-initio\textit{ab-initio} random structure searching (AIRSS) to carry out a systematic search for crystalline Na-Ge materials at both 0 and 10 GPa. The high-throughput structural relaxations were accelerated using a machine-learned interatomic potential (MLIP) fit to density-functional theory (DFT) reference data, allowing \sim1.5 million structures to be relaxed. At ambient conditions we predict three new Zintl phases, Na3_3Ge2_2, Na2_2Ge and Na9_9Ge4_4, to be stable and a number of Ge-rich layered structures to lie in close proximity to the convex hull. The known Naδ_\deltaGe34_{34} clathrate and Na4_4Ge13_{13} host-guest structures are found to be relatively stabilized at higher temperature by vibrational contributions to the free energy. Overall, the low energy phases exhibit exceptional structural diversity, with the expected mixture of covalent and ionic bonding confirmed using the electron-localisation function (ELF). The local Ge structural motifs present at each composition were determined using Smooth Overlap of Atomic Positions (SOAP) descriptors and the Ge-K edge was simulated for representatives of each motif, providing a direct link to experimental x-ray absorption spectroscopy (XAS). Two Ge-rich phases are predicted to be stable at 10 GPa; NaGe3_3 and NaGe2_2 have simple kagome and simple hexagonal Ge lattices respectively with Na contained in the pores. NaGe3_3 is isostructural with the MgB3_3 and MgSi3_3 family of kagome superconductors and remains dynamically stable at 0 GPa. Removing the Na from NaGe2_2 results in the hexagonal lonsdalite Ge allotrope, which has a direct band gap.

Keywords

Cite

@article{arxiv.2402.15299,
  title  = {Structure prediction of stable sodium germanides at 0 and 10 GPa},
  author = {James P. Darby and Angela F. Harper and Joseph R. Nelson and Andrew J. Morris},
  journal= {arXiv preprint arXiv:2402.15299},
  year   = {2024}
}

Comments

11 pages, 8 figures