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Chemical Bonding in Colossal Thermopower FeSb2.
Grønbech, Thomas Bjørn Egede; Tolborg, Kasper; Svendsen, Helle; Overgaard, Jacob; Chen, Yu-Sheng; Brummerstedt Iversen, Bo.
Afiliação
  • Grønbech TBE; Center for Materials Crystallography, Department of Chemistry, and iNANO, Aarhus University, Langelandsgade 140, 8000, Aarhus C, Denmark.
  • Tolborg K; Center for Materials Crystallography, Department of Chemistry, and iNANO, Aarhus University, Langelandsgade 140, 8000, Aarhus C, Denmark.
  • Svendsen H; Center for Materials Crystallography, Department of Chemistry, and iNANO, Aarhus University, Langelandsgade 140, 8000, Aarhus C, Denmark.
  • Overgaard J; Center for Materials Crystallography, Department of Chemistry, and iNANO, Aarhus University, Langelandsgade 140, 8000, Aarhus C, Denmark.
  • Chen YS; NSF's ChemMatCARS, The University of Chicago, Argonne, IL, 60439, USA.
  • Brummerstedt Iversen B; Center for Materials Crystallography, Department of Chemistry, and iNANO, Aarhus University, Langelandsgade 140, 8000, Aarhus C, Denmark.
Chemistry ; 26(39): 8651-8662, 2020 Jul 14.
Article em En | MEDLINE | ID: mdl-32297999
ABSTRACT
FeSb2 exhibits a colossal Seebeck coefficient ( S ) and a record-breaking high thermoelectric power factor. It also has an atypical shift from diamagnetism to paramagnetism with increasing temperature, and the fine details of its electron correlation effects have been widely discussed. The extraordinary physical properties must be rooted in the nature of the chemical bonding, and indeed, the chemical bonding in this archetypical marcasite structure has been heavily debated on a theoretical basis since the 1960s. The two prevalent models for describing the bonding interactions in FeSb2 are based on either ligand-field stabilization of Fe or a network structure of Sb hosting Fe ions. However, neither model can account for the observed properties of FeSb2 . Herein, an experimental electron density study is reported, which is based on analysis of synchrotron X-ray diffraction data measured at 15 K on a minute single crystal to limit systematic errors. The analysis is supplemented with density functional theory calculations in the experimental geometry. The experimental data are at variance with both the additional single-electron Sb-Sb bond implied by the covalent model, and the large formal charge and expected d-orbital splitting advocated by the ionic model. The structure is best described as an extended covalent network in agreement with expectations based on electronegativity differences.
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Texto completo: 1 Base de dados: MEDLINE Tipo de estudo: Prognostic_studies Idioma: En Revista: Chemistry Assunto da revista: QUIMICA Ano de publicação: 2020 Tipo de documento: Article País de afiliação: Dinamarca

Texto completo: 1 Base de dados: MEDLINE Tipo de estudo: Prognostic_studies Idioma: En Revista: Chemistry Assunto da revista: QUIMICA Ano de publicação: 2020 Tipo de documento: Article País de afiliação: Dinamarca