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Adjustable quantum interference oscillatio in Sb-doped Bi2Se3 topological insulator nanoribbons

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Abstract
Topological insulator (TI) nanoribbons (NRs) provide a platform for investigating quantum interference oscillations combined with topological surface states. One-dimensional subbands formed along the perimeter of a TI NR can be modulated by an axial magnetic field, exhibiting Aharonov−Bohm (AB) and Altshuler−Aronov−Spivak (AAS) oscillations of magnetoconductance (MC). Using Sb-doped Bi2Se3 TI NRs, we found that the relative amplitudes of the two quantum oscillations can be tuned by varying the channel length, exhibiting crossover from quasi-ballistic to diffusive transport regimes. The AB and AAS oscillations were discernible even for a 70 μm long channel, while only the AB oscillations were observed for a short channel. Analyses based on ensemble-averaged fast Fourier transform of MC curves revealed exponential temperature dependences of the AB and AAS oscillations, from which the circumferential phase-coherence length and thermal length were obtained. Our observations indicate that the channel length in a TI NR can be a useful control knob for tailored quantum interference oscillations, especially for developing topological hybrid quantum devices. © 2020 American Chemical Society
Author(s)
Kim, H.-S.Hwang, T.-H.Kim, N.-H.Hou, Y.Yu, D.Sim, H.-S.Doh, Yong-Joo
Issued Date
2020-10
Type
Article
DOI
10.1021/acsnano.0c06892
URI
https://scholar.gist.ac.kr/handle/local/11910
Publisher
American Chemical Society
Citation
ACS Nano, v.14, no.10, pp.14118 - 14125
ISSN
1936-0851
Appears in Collections:
Department of Physics and Photon Science > 1. Journal Articles
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