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Experimental evidences of topological surface states of β-Ag2Te
Author(s) -
Azat Sulaev,
Peng Ren,
Bin Xia,
Qing Hua Lin,
Ting Yu,
Caiyu Qiu,
ShuangYuan Zhang,
MingYong Han,
Zhi Peng Li,
Wei Zhu,
Qingyu Wu,
Yuan Ping Feng,
Lei Shen,
Shun-Qing Shen,
Lan Wang
Publication year - 2013
Publication title -
aip advances
Language(s) - English
Resource type - Journals
ISSN - 2158-3226
DOI - 10.1063/1.4795735
Subject(s) - topological insulator , surface states , topology (electrical circuits) , spintronics , condensed matter physics , ambipolar diffusion , physics , electric field , topological degeneracy , surface (topology) , topological order , electron , quantum , quantum mechanics , symmetry protected topological order , ferromagnetism , geometry , mathematics , combinatorics
We present evidence of topological surface states in β-Ag2Te through first-principles calculations, periodic quantum interference effect and ambipolar electric field effect in single crystalline nanoribbon. Our first-principles calculations show that β-Ag2Te is a topological insulator with a gapless Dirac cone with strong anisotropy. To experimentally probe the topological surface state, we synthesized high quality β-Ag2Te nanoribbons and performed electron transport measurements. The coexistence of pronounced Aharonov-Bohm oscillations and weak Altshuler-Aronov-Spivak oscillations clearly demonstrates coherent electron transport around the perimeter of β-Ag2Te nanoribbon and therefore the existence of topological surface states, which is further supported by the ambipolar electric field effect for devices fabricated by β-Ag2Te nanoribbons. The experimental evidences of topological surface states and the theoretically predicted anisotropic Dirac cone of β-Ag2Te suggest that the material may be a promising candidate of topological insulator for fundamental study and future spintronic devices

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