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- Hole Fermi surface in Bi2Se3 probed by quantum oscillations doi link

Auteur(s): Piot B.A., Desrat W., Maude Duncan Kennedy, Orlita M., Potemski M., Martinez Garcia Gines, Hor Y.S.

(Article) Publié: Physical Review B, vol. 93 p.155206 (2016)
Texte intégral en Openaccess : openaccess


Ref HAL: hal-01924991_v1
DOI: 10.1103/PhysRevB.93.155206
WoS: 000374948400008
Exporter : BibTex | endNote
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Résumé:

Transport and torque magnetometry measurements are performed at high magnetic fields and low temperatures in a series of p-type (Ca-doped) Bi2Se3 crystals. The angular dependence of the Shubnikov-de Haas and de Haas-van Alphen quantum oscillations enables us to determine the Fermi surface of the bulk valence band states as a function of the carrier density. At low density, the angular dependence exhibits a downturn in the oscillations frequency between 0◦ and 90◦, reflecting a bag-shaped hole Fermi surface. The detection of a single frequency for all tilt angles rules out the existence of a Fermi surface with different extremal cross sections down to 24 meV. There is therefore no signature of a camelback in the valence band of our bulk samples, in accordance with the direct band gap predicted by GW calculations.