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Gate-tuned differentiation of surface-conducting states in Bi1.5Sb0.5Te1.7Se1.3 topological- insulator thin crystals SCIE SCOPUS

Title
Gate-tuned differentiation of surface-conducting states in Bi1.5Sb0.5Te1.7Se1.3 topological- insulator thin crystals
Authors
Lee, JPark, JLee, JHKim, JSLee, HJ
Date Issued
2012-12-26
Publisher
APS
Abstract
Using field-angle, temperature, and back-gate-voltage dependence of the weak antilocalization (WAL) and universal conductance fluctuations of thin Bi1.5Sb0.5Te1.7Se1.3 topological-insulator single crystals, in combination with gate-tuned Hall resistivity measurements, we reliably separated the surface conduction of the topological nature from both the bulk conduction and topologically trivial surface conduction. We minimized the bulk conduction in the crystals and back-gate tuned the Fermi level to the topological bottom-surface band while keeping the top surface insensitive to back-gating with the optimal crystal thickness of similar to 100 nm. We argue that the WAL effect occurring by the coherent diffusive motion of carriers in relatively low magnetic fields is more essential than other transport tools such as the Shubnikov-de Hass oscillations for confirming the conduction by the topologically protected surface state. Our approach provides a highly coherent picture of the surface transport properties of topological insulators and a reliable means of investigating the fundamental topological nature of surface conduction and possible quantum-device applications related to momentum-locked spin polarization in surface states. DOI: 10.1103/PhysRevB.86.245321
Keywords
SINGLE DIRAC CONE; QUANTUM OSCILLATIONS; MAGNETIC-FIELD; BI2SE3; BI2TE3; FILMS; MAGNETORESISTANCE; LOCALIZATION; NANORIBBONS; ELECTRONS
URI
https://oasis.postech.ac.kr/handle/2014.oak/15930
DOI
10.1103/PHYSREVB.86.245321
ISSN
1098-0121
Article Type
Article
Citation
Physical Review B, vol. 86, no. 24, page. 245321, 2012-12-26
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