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      Apparent PT-symmetric terahertz photoconductivity in the topological phase of Hg 1− x Cd x Te-based structures

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          Abstract

          We show that the terahertz (THz) photoconductivity in the topological phase of Hg 1– x Cd x Te-based structures exhibits the apparent PT- (parity-time) symmetry whereas the P-symmetry and the T-symmetry, separately, are not conserved. Moreover, it is demonstrated that the P- and T-symmetry breaking may not be related to any type of the sample anisotropy. This result contradicts the apparent symmetry arguments and means that there exists an external factor that interacts with the sample electronic system and breaks the symmetry. We show that deviations from the ideal experimental geometry may not be such a factor.

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          A tunable topological insulator in the spin helical Dirac transport regime.

          Helical Dirac fermions-charge carriers that behave as massless relativistic particles with an intrinsic angular momentum (spin) locked to its translational momentum-are proposed to be the key to realizing fundamentally new phenomena in condensed matter physics. Prominent examples include the anomalous quantization of magneto-electric coupling, half-fermion states that are their own antiparticle, and charge fractionalization in a Bose-Einstein condensate, all of which are not possible with conventional Dirac fermions of the graphene variety. Helical Dirac fermions have so far remained elusive owing to the lack of necessary spin-sensitive measurements and because such fermions are forbidden to exist in conventional materials harbouring relativistic electrons, such as graphene or bismuth. It has recently been proposed that helical Dirac fermions may exist at the edges of certain types of topologically ordered insulators-materials with a bulk insulating gap of spin-orbit origin and surface states protected against scattering by time-reversal symmetry-and that their peculiar properties may be accessed provided the insulator is tuned into the so-called topological transport regime. However, helical Dirac fermions have not been observed in existing topological insulators. Here we report the realization and characterization of a tunable topological insulator in a bismuth-based class of material by combining spin-imaging and momentum-resolved spectroscopies, bulk charge compensation, Hall transport measurements and surface quantum control. Our results reveal a spin-momentum locked Dirac cone carrying a non-trivial Berry's phase that is nearly 100 per cent spin-polarized, which exhibits a tunable topological fermion density in the vicinity of the Kramers point and can be driven to the long-sought topological spin transport regime. The observed topological nodal state is shown to be protected even up to 300 K. Our demonstration of room-temperature topological order and non-trivial spin-texture in stoichiometric Bi(2)Se(3).M(x) (M(x) indicates surface doping or gating control) paves the way for future graphene-like studies of topological insulators, and applications of the observed spin-polarized edge channels in spintronic and computing technologies possibly at room temperature.
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            Two-dimensional topological photonics

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              HgCdTe infrared detector material: history, status and outlook

              A Rogalski (2005)
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                Author and article information

                Contributors
                khokhlov@mig.phys.msu.ru
                Journal
                Sci Rep
                Sci Rep
                Scientific Reports
                Nature Publishing Group UK (London )
                2045-2322
                11 February 2020
                11 February 2020
                2020
                : 10
                : 2377
                Affiliations
                [1 ]ISNI 0000 0001 2342 9668, GRID grid.14476.30, Physics Department, , M.V. Lomonosov Moscow State University, ; Moscow, 119991 Russia
                [2 ]ISNI 0000 0001 2342 9668, GRID grid.14476.30, Chemistry Department, , M.V. Lomonosov Moscow State University, ; Moscow, 119991 Russia
                [3 ]A.V. Rzhanov Institute of Semiconductors Physics, Syberian Branch of RAS, Novosibirsk, 630090 Russia
                [4 ]ISNI 0000 0001 0656 6476, GRID grid.425806.d, P.N. Lebedev Physical Institute of RAS, ; Moscow, 119991 Russia
                [5 ]ISNI 0000 0001 2190 5763, GRID grid.7727.5, Faculty of Physics, , University of Regensburg, ; Regensburg, D-93053 Germany
                Article
                59280
                10.1038/s41598-020-59280-0
                7012871
                32047201
                9d52d087-faff-4099-b86c-9bc6fca9cfd2
                © The Author(s) 2020

                Open Access This article is licensed under a Creative Commons Attribution 4.0 International License, which permits use, sharing, adaptation, distribution and reproduction in any medium or format, as long as you give appropriate credit to the original author(s) and the source, provide a link to the Creative Commons license, and indicate if changes were made. The images or other third party material in this article are included in the article’s Creative Commons license, unless indicated otherwise in a credit line to the material. If material is not included in the article’s Creative Commons license and your intended use is not permitted by statutory regulation or exceeds the permitted use, you will need to obtain permission directly from the copyright holder. To view a copy of this license, visit http://creativecommons.org/licenses/by/4.0/.

                History
                : 25 September 2019
                : 27 January 2020
                Categories
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                © The Author(s) 2020

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                topological insulators,terahertz optics
                Uncategorized
                topological insulators, terahertz optics

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