English

Solid-state chemistry of glassy antimony oxides

Materials Science 2016-01-22 v1

Abstract

The amorphous phases of antimony oxide at three different oxidation levels have been investigated by {\it ab initio} molecular-dynamics calculations using a simulated `melt-quench' approach. The atomic and electronic structure of the amorphous phases are analyzed and compared to their crystalline counterparts. The amorphous structure of the trioxide ({\it a\,}--Sb2_2O3_3) resembles the β\beta-phase of the crystalline form (valentinite), in agreement with previous observations. In the relaxed athermal structure, however, more senarmontite-like structural features are apparent. The phase diagram of the amorphous phases with respect to oxygen chemical potential has been calculated within the framework of {\it ab initio} thermodynamics. At elevated oxidation levels, the resulting tetraoxide and pentoxide materials show distinct variation in electronic structure compared to the trioxide, with the electronic density of states indicating a narrowing of the electronic gap with increasing oxidation level.

Keywords

Cite

@article{arxiv.1509.08192,
  title  = {Solid-state chemistry of glassy antimony oxides},
  author = {Chang-Eun Kim and Jonathan M. Skelton and Aron Walsh and Aloysius Soon},
  journal= {arXiv preprint arXiv:1509.08192},
  year   = {2016}
}

Comments

19 pages, 5 figures (Accepted in the Journal of Materials Chemistry C)

R2 v1 2026-06-22T11:06:41.541Z