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External pressure and composition effects on the atomic and electronic structure of SnWO4

  • L'Orme des Merisiers
  • University of Latvia

Research output: Contribution to journalArticlepeer-review

26 Citations (Scopus)

Abstract

The atomic and electronic structure of tin tungstates, α-SnWO4, α-Sn1.03W0.99O4 and β-SnWO4, was studied by the W L3-edge X-ray absorption spectroscopy and first-principles linear combination of atomic orbital (LCAO) calculations based on the hybrid exchange-correlation density functional (DFT)/Hartree-Fock (HF) scheme. It was found that the crystal structure of both α-phases is built up of strongly distorted WO6 octahedra, whereas that of β-SnWO4 is composed of nearly regular WO4 tetrahedra. In addition, there are distorted SnO6 octahedra in both α- and β-phases. The metal-oxygen octahedra distortion is explained by the second-order Jahn-Teller effect. The influence of pressure on the structure of α-SnWO4 and β-SnWO4 was studied in detail based on the calculated equations of state. The compressibility of β-SnWO4 was found to be larger than that of α-SnWO4. The existence of the insulator-to-metal transition was theoretically predicted in α-SnWO4 at about 16 GPa and was explained by a symmetrization of metal-oxygen octahedra leading to a strong interaction of Sn 5s, W 5d and O 2p states and closing of band gap.

Original languageEnglish
Pages (from-to)627-634
Number of pages8
JournalSolar Energy Materials and Solar Cells
Volume143
DOIs
Publication statusPublished - 1 Dec 2015

Keywords

  • EXAFS
  • First-principles calculation
  • Insulator-to-metal transition
  • Tin tungstate

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