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Observation of a large-gap topological-insulator class with a single Dirac cone on the surface

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TLDR
In this paper, an angle-resolved photo-emission spectroscopy study was conducted to reveal the first observation of a topological state of matter featuring a single surface Dirac cone realized in the naturally occurring Bi-2Se-3 class of materials.
Abstract
Recent experiments and theories have suggested that strong spin–orbit coupling effects in certain band insulators can give rise to a new phase of quantum matter, the so-called topological insulator, which can show macroscopic quantum-entanglement effects. Such systems feature two-dimensional surface states whose electrodynamic properties are described not by the conventional Maxwell equations but rather by an attached axion field, originally proposed to describe interacting quarks. It has been proposed that a topological insulator with a single Dirac cone interfaced with a superconductor can form the most elementary unit for performing fault-tolerant quantum computation. Here we present an angle-resolved photoemission spectroscopy study that reveals the first observation of such a topological state of matter featuring a single surface Dirac cone realized in the naturally occurring Bi_2Se_3 class of materials. Our results, supported by our theoretical calculations, demonstrate that undoped Bi_2Se_3 can serve as the parent matrix compound for the long-sought topological device where in-plane carrier transport would have a purely quantum topological origin. Our study further suggests that the undoped compound reached via n-to-p doping should show topological transport phenomena even at room temperature.

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Citations
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Infrared/terahertz spectra of the photogalvanic effect in (Bi,Sb)Te based three-dimensional topological insulators

TL;DR: In this article, the infrared/terahertz spectra of photocurrents in (Bi, Sb) Te-based three-dimensional topological insulators were analyzed and it was shown that the photocurrent is caused by the linear photogalvanic effect excited in the surface states.
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Uniaxial-strain control of nematic superconductivity in SrxBi2Se3.

TL;DR: The suppression of subdomains indicates that it is the Δ4y state that is most favoured under compression along the basal Bi-Bi bonds, which allows us to determine the coupling parameter between the nematicity and lattice distortion.
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Influence of Thickness on the Electrical Transport Properties of Exfoliated Bi2Te3 Ultrathin Films.

TL;DR: The coefficient α in the Hikami-Larkin-Nagaoka equation is shown to be ~0.5, manifesting that only the bottom surface of the Bi2Te3 ultrathin films takes part in transport conductions, paving the way for understanding thoroughly the surface transport properties of topological insulators.
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Spin Hall photoconductance in a 3D topological insulator at room temperature

TL;DR: In this article, a helical, bias-dependent photoconductance at the lateral edges of topological Bi2Te2Se platelets for perpendicular incidence of light was observed, indicating spin accumulation induced by a transversal spin Hall effect in the bulk states of the platelets.
Journal ArticleDOI

Transferring MBE-Grown Topological Insulator Films to Arbitrary Substrates and Metal–Insulator Transition via Dirac Gap

TL;DR: In this paper, the authors developed a process to transfer the entire area of TI Bi2Se3 thin films grown epitaxially on Al2O3 and SiO2 to arbitrary substrates, maintaining their pristine morphology and crystallinity.
References
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Journal ArticleDOI

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Quantum Spin Hall Insulator State in HgTe Quantum Wells

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Superconducting Proximity Effect and Majorana Fermions at the Surface of a Topological Insulator

TL;DR: It is shown that linear junctions between superconductors mediated by the topological insulator form a nonchiral one-dimensional wire for Majorana fermions, and that circuits formed from these junctions provide a method for creating, manipulating, and fusing Majorana bound states.
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