English

Orpiment under compression: metavalent bonding at high pressure

Materials Science 2020-03-18 v1

Abstract

We report a joint experimental and theoretical study of the structural, vibrational, and electronic properties of layered monoclinic arsenic sulfide (alpha-As2S3), aka mineral orpiment, under compression. X-ray diffraction and Raman scattering measurements performed in orpiment samples at high pressure and combined with ab initio calculations have allowed us to determine the equation of state and the tentative assignment of the symmetry of many Raman-active modes of orpiment. From our results, we conclude that no first-order phase transition occurs up to 25 GPa at room temperature; however, compression leads to an isostructural phase transition above 20 GPa. In fact, As coordination increases from threefold at room pressure to more than fivefold above 20 GPa. This increase in coordination can be understood as the formation of metavalent bonding at high pressure, which results in a progressive decrease of the electronic and optical bandgap, an increase of the dielectric tensor and Born effective charges, and a considerable softening of many high-frequency optical modes with pressure. The formation of metavalent bonding may also explain the behavior of other group-15 sesquichalcogenides under compression. Moreover, our results suggest that group-15 sesquichalcogenides either show metavalent bonding at room pressure or undergo a transition from p-type covalent bonding at room pressure towards metavalent bonding at high pressure, as a preceding phase towards metallic bonding at very high pressure.

Keywords

Cite

@article{arxiv.1907.11227,
  title  = {Orpiment under compression: metavalent bonding at high pressure},
  author = {V. P. Cuenca-Gotor and J. A. Sans and O. Gomis and A. Mujica and S. Radescu and A. Muñoz and P. Rodríguez-Hernández and E. Lora da Silva and C. Popescu and J. Ibañez and R. Vilaplana and F. J. Manjón},
  journal= {arXiv preprint arXiv:1907.11227},
  year   = {2020}
}

Comments

12 figures in the main manuscript

R2 v1 2026-06-23T10:31:11.288Z