The electronic structure of the Te doped CoSb 3 skutterudite is investigated by means of fully periodic density functional theory (DFT) calculations. Since the geometrical structure of a material may strongly affect its properties, Te substituted for Sb (Co 4Sb 11Te) and Te fully filled (TeCo 4Sb 12) cobalt skutterudite are both studied in order to understand where Te atom is sitting. From the analysis of the geometry and electronic structure properties, the Te filled system is ruled out. The extent of the change transfer among Co, Sb and Te atoms is evaluated using the Quantum Theory of Atom in Molecules (QTAIM). Te substitution for Sb yields a conductor with Fermi energy lying in the conduction bands zone of unsubstituted CoSb 3. The Seebeck coefficient S and the electrical conductivity sigma are calculated using the semiclassical Boltzmann monoelectronic transport theory. Computed S values agree with experimental evaluations on nanostructured Te doped CoSb 3 samples when the frozen band approximation is used for low Te doping and the Co 4Sb 11Te band structure is adopted for high Te content

Theoretical modeling of Te doped CoSb3

Gatti C;
2003

Abstract

The electronic structure of the Te doped CoSb 3 skutterudite is investigated by means of fully periodic density functional theory (DFT) calculations. Since the geometrical structure of a material may strongly affect its properties, Te substituted for Sb (Co 4Sb 11Te) and Te fully filled (TeCo 4Sb 12) cobalt skutterudite are both studied in order to understand where Te atom is sitting. From the analysis of the geometry and electronic structure properties, the Te filled system is ruled out. The extent of the change transfer among Co, Sb and Te atoms is evaluated using the Quantum Theory of Atom in Molecules (QTAIM). Te substitution for Sb yields a conductor with Fermi energy lying in the conduction bands zone of unsubstituted CoSb 3. The Seebeck coefficient S and the electrical conductivity sigma are calculated using the semiclassical Boltzmann monoelectronic transport theory. Computed S values agree with experimental evaluations on nanostructured Te doped CoSb 3 samples when the frozen band approximation is used for low Te doping and the Co 4Sb 11Te band structure is adopted for high Te content
2003
Istituto di Scienze e Tecnologie Molecolari - ISTM - Sede Milano
cobalt compounds; conduction bands; density functional theory; electronic density of states; energy gap; Seebeck effect; thermoelectricity
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Utilizza questo identificativo per citare o creare un link a questo documento: https://hdl.handle.net/20.500.14243/62424
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