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  4. Temperature-dependent Fermi surface of 2H-TaSe2 driven by competing density wave order fluctuations
 
research article

Temperature-dependent Fermi surface of 2H-TaSe2 driven by competing density wave order fluctuations

Inosov, D. S.
•
Evtushinsky, D. V.
•
Zabolotnyy, V. B.
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2009
Physical Review B

Temperature evolution of the 2H-TaSe2 Fermi surface (FS) is studied by high-resolution angle-resolved photoemission spectroscopy. High-accuracy determination of the FS geometry was possible after measuring electron momenta and velocities along all high-symmetry directions as a function of temperature with subsequent fitting to a tight-binding model. The estimated incommensurability parameter of the nesting vector agrees with that of the incommensurate charge modulations. We observe detectable nonmonotonic temperature dependence of the FS shape, which we show to be consistent with the analogous behavior of the pseudogap. These changes in the electronic structure could stem from the competition of commensurate and incommensurate charge density wave order fluctuations and could explain the puzzling reopening of the pseudogap observed in the normal state of the transition metal dichalcogenides.

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Type
research article
DOI
10.1103/PhysRevB.79.125112
Web of Science ID

WOS:000264769300031

Author(s)
Inosov, D. S.
Evtushinsky, D. V.
Zabolotnyy, V. B.
Kordyuk, A. A.
Buechner, B.
Follath, R.
Berger, H.
Borisenko, S. V.
Date Issued

2009

Published in
Physical Review B
Volume

79

Issue

12

Article Number

125112

Subjects

charge density waves

•

commensurate-incommensurate transformations

•

electronic structure

•

Fermi surface

•

photoelectron spectra

•

tantalum compounds

•

tight-binding calculations

•

Resolution Photoemission-Spectroscopy

•

Charge-Density

•

Quasi-Crystals

•

Electronic-Structure

•

Neutron-Scattering

•

Peierls Transition

•

Superconductors

•

Energy

•

Pseudogap

•

Insulator

Editorial or Peer reviewed

REVIEWED

Written at

EPFL

EPFL units
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Available on Infoscience
November 30, 2010
Use this identifier to reference this record
https://infoscience.epfl.ch/handle/20.500.14299/60358
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