DocumentCode :
2831406
Title :
Thermoelectric properties of Mo6Se8-based chevrel phase with semiconducting properties
Author :
Ohta, Y. ; Rousseau, J. ; Tobola, J. ; Pecheur, P. ; Scherrer, H. ; Iwanaga, I. ; Kasama, A. ; Matsumura, Y.
Author_Institution :
Japan Ultra-high Temp. Mater. Res. Inst., Yamaguchi, Japan
fYear :
2003
fDate :
17-21 Aug. 2003
Firstpage :
255
Lastpage :
258
Abstract :
Mo6Se8-based Chevrel phase compounds with inserted cations into cavities are interesting as a new candidate of PGEC (Phonon Glass Electron Crystal) thermoelectric materials. From band structure calculations, the compositions including TiMo6Se8 have been found to be semiconductor or semimetal, and therefore are expected to have good Seebeck coefficient besides low thermal conductivity. However it had been apparent that insertion of enough cations to the cavities in Mo6Se8 with simple process was difficult due to secondary phase and oxide appearance. We present in this paper an estimation of the effect of two inserted cations experimentally and theoretically in order to improve thermoelectric properties of Chevrel phases. The thermoelectric properties are significantly enhanced by Cu-addition, and the dimensionless figure of merit, ZT=0.22 is estimated for nominal Cu0.3Ti1.0Mo6Se8 sample at 800°C. It is found from band structure calculations by the self-consistent Korringa-Kohn-Rostoker (KKR) method that the Fermi level tends to shift to upper state by Cu-addition. Cu-addition can compensate a loss of Ti and control carrier concentration instead of Ti.
Keywords :
Fermi level; KKR calculations; Seebeck effect; band structure; copper compounds; electrical conductivity; molybdenum compounds; thermal conductivity; thermoelectricity; titanium compounds; 800 degC; Cu0.3Ti1.0Mo6Se8; Fermi level; Mo6Se8-based chevrel phase; TiMo6Se8; band structure calculations; carrier concentration; dimensionless figure of merit; loss of Ti; oxide appearance; secondary phase; self-consistent Korringa-Kohn-Rostoker method; semiconducting properties; thermoelectric properties; Atmosphere; Conducting materials; Conductivity; Electrons; Optical materials; Plasma temperature; Powders; Semiconductivity; Thermoelectricity; X-ray diffraction;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Thermoelectrics, 2003 Twenty-Second International Conference on - ICT
Print_ISBN :
0-7803-8301-X
Type :
conf
DOI :
10.1109/ICT.2003.1287497
Filename :
1287497
Link To Document :
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