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Phase Formation Behavior and Thermoelectric Transport Properties of S-Doped FeSe2−xSx Polycrystalline Alloys
by
Kim, Sang-il
, Park, Okmin
, Lee, Se Woong
, Park, Sang Jeong
in
Chalcogenides
/ Crystal defects
/ Crystal structure
/ Electrical resistivity
/ Electron transport
/ FeS2
/ FeSe2
/ Figure of merit
/ Lattice parameters
/ Maximum power
/ Orthorhombic phase
/ Plasma sintering
/ Point defects
/ Polycrystals
/ Power factor
/ Pyrite
/ Seebeck effect
/ Solid solutions
/ Substitution reactions
/ Thermal conductivity
/ thermoelectric
/ Thermoelectric materials
/ Transition metal alloys
/ Transition metal compounds
/ Transport properties
2022
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Phase Formation Behavior and Thermoelectric Transport Properties of S-Doped FeSe2−xSx Polycrystalline Alloys
by
Kim, Sang-il
, Park, Okmin
, Lee, Se Woong
, Park, Sang Jeong
in
Chalcogenides
/ Crystal defects
/ Crystal structure
/ Electrical resistivity
/ Electron transport
/ FeS2
/ FeSe2
/ Figure of merit
/ Lattice parameters
/ Maximum power
/ Orthorhombic phase
/ Plasma sintering
/ Point defects
/ Polycrystals
/ Power factor
/ Pyrite
/ Seebeck effect
/ Solid solutions
/ Substitution reactions
/ Thermal conductivity
/ thermoelectric
/ Thermoelectric materials
/ Transition metal alloys
/ Transition metal compounds
/ Transport properties
2022
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Phase Formation Behavior and Thermoelectric Transport Properties of S-Doped FeSe2−xSx Polycrystalline Alloys
by
Kim, Sang-il
, Park, Okmin
, Lee, Se Woong
, Park, Sang Jeong
in
Chalcogenides
/ Crystal defects
/ Crystal structure
/ Electrical resistivity
/ Electron transport
/ FeS2
/ FeSe2
/ Figure of merit
/ Lattice parameters
/ Maximum power
/ Orthorhombic phase
/ Plasma sintering
/ Point defects
/ Polycrystals
/ Power factor
/ Pyrite
/ Seebeck effect
/ Solid solutions
/ Substitution reactions
/ Thermal conductivity
/ thermoelectric
/ Thermoelectric materials
/ Transition metal alloys
/ Transition metal compounds
/ Transport properties
2022
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Phase Formation Behavior and Thermoelectric Transport Properties of S-Doped FeSe2−xSx Polycrystalline Alloys
Journal Article
Phase Formation Behavior and Thermoelectric Transport Properties of S-Doped FeSe2−xSx Polycrystalline Alloys
2022
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Overview
Some transition-metal dichalcogenides have been actively studied recently owing to their potential for use as thermoelectric materials due to their superior electronic transport properties. Iron-based chalcogenides, FeTe2, FeSe2 and FeS2, are narrow bandgap (~1 eV) semiconductors that could be considered as cost-effective thermoelectric materials. Herein, the thermoelectric and electrical transport properties FeSe2–FeS2 system are investigated. A series of polycrystalline samples of the nominal composition of FeSe2−xSx (x = 0, 0.2, 0.4, 0.6, and 0.8) samples are synthesized by a conventional solid-state reaction. A single orthorhombic phase of FeSe2 is successfully synthesized for x = 0, 0.2, and 0.4, while secondary phases (Fe7S8 or FeS2) are identified as well for x = 0.6 and 0.8. The lattice parameters gradually decrease gradually with S content increase to x = 0.6, suggesting that S atoms are successfully substituted at the Se sites in the FeSe2 orthorhombic crystal structure. The electrical conductivity increases gradually with the S content, whereas the positive Seebeck coefficient decreases gradually with the S content at 300 K. The maximum power factor of 0.55 mW/mK2 at 600 K was seen for x = 0.2, which is a 10% increase compared to the pristine FeSe2 sample. Interestingly, the total thermal conductivity at 300 K of 7.96 W/mK (x = 0) decreases gradually and significantly to 2.58 W/mK for x = 0.6 owing to the point-defect phonon scattering by the partial substitution of S atoms at the Se site. As a result, a maximum thermoelectric figure of merit of 0.079 is obtained for the FeSe1.8S0.2 (x = 0.2) sample at 600 K, which is 18% higher than that of the pristine FeSe2 sample.
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