Thermoelectric materials taking advantage of spin entropy: lessons from chalcogenides and oxides
The interplay between charges and spins may influence the dynamics of the carriers and determine their thermoelectric properties. In that respect, magneto-thermoelectric power MTEP, i.e. the measurements of the Seebeck coefficient S under the application of an external magnetic field, is a powerful...
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Published in | Science and technology of advanced materials Vol. 22; no. 1; pp. 583 - 596 |
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Main Authors | , , , , , , , , |
Format | Journal Article |
Language | English |
Published |
United States
Taylor & Francis
31.12.2021
Taylor & Francis Group |
Subjects | |
Online Access | Get full text |
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Summary: | The interplay between charges and spins may influence the dynamics of the carriers and determine their thermoelectric properties. In that respect, magneto-thermoelectric power MTEP, i.e. the measurements of the Seebeck coefficient S under the application of an external magnetic field, is a powerful technique to reveal the role of magnetic moments on S. This is illustrated by different transition metal chalcogenides: CuCrTiS
4
and CuMnTiS
4
magnetic thiospinels, which are compared with magnetic oxides, Curie-Weiss (CW) paramagnetic misfit cobaltites, ruthenates, either ferromagnetic perovskite or Pauli paramagnet quadruple perovskites, and CuGa
1-x
Mn
x
Te
2
chalcopyrite telluride and Bi
1.99
Cr
0.01
Te
3
in which diluted magnetism is induced by 3%-Mn and 1%-Cr substitution, respectively. In the case of a ferromagnet (below T
C
) and CW paramagnetic materials, the increase of magnetization at low T when a magnetic field is applied is accompanied by a decrease of the entropy of the carriers and hence
decreases. This is consistent with the lack of MTEP in the Pauli paramagnetic quadruple perovskites. Also, no significant MTEP is observed in CuGa
1-x
Mn
x
Te
2
and Bi
1.99
Cr
0.01
Te
3
, for which Kondo-type interaction between magnetic moments and carriers prevails. In contrast, spin glass CuCrTiS
4
exhibits negative MTEP like in ferromagnetic ruthenates and paramagnetic misfit cobaltites. This investigation of some chalcogenides and oxides provides key ingredients to select magnetic materials for which S benefits from spin entropy. |
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Bibliography: | ObjectType-Article-1 SourceType-Scholarly Journals-1 ObjectType-Feature-2 content type line 23 |
ISSN: | 1468-6996 1878-5514 |
DOI: | 10.1080/14686996.2021.1951593 |