Quantum electronic transport in atomically layered topological insulators

Thesis: Ph. D., Massachusetts Institute of Technology, Department of Physics, 2018. === Cataloged from PDF version of thesis. === Includes bibliographical references (pages 153-180). === The merger of topology and symmetry established a new foundation for understanding the physics of condensed matte...

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Main Author: Fatemi, Valla
Other Authors: Pablo Jarillo-Herrero.
Format: Others
Language:English
Published: Massachusetts Institute of Technology 2018
Subjects:
Online Access:http://hdl.handle.net/1721.1/115683
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spelling ndltd-MIT-oai-dspace.mit.edu-1721.1-1156832019-05-02T15:33:39Z Quantum electronic transport in atomically layered topological insulators Fatemi, Valla Pablo Jarillo-Herrero. Massachusetts Institute of Technology. Department of Physics. Massachusetts Institute of Technology. Department of Physics. Physics. Thesis: Ph. D., Massachusetts Institute of Technology, Department of Physics, 2018. Cataloged from PDF version of thesis. Includes bibliographical references (pages 153-180). The merger of topology and symmetry established a new foundation for understanding the physics of condensed matter, beginning with the notion of topological insulators (TIs) for electronic systems. For the time-reversal invariant TIs, a key aspect is the "helical" mode at the boundary of the system - that is, the ID edge of a 2D topological insulator or the 2D surface of a 3D topological insulator. These helical modes represent the extreme limit of spin-orbit coupling in that the spin-degenercy has been completely lifted while preserving time-reversal symmetry. This property is crucial for proposals realizing exotic excitations like the Majorana bound state. In this thesis, I present a series of experiments investigating electronic transport through the boundary modes of 3D and 2D topological insulators, specifically Bi1.5 Sb0.5 Te1.7 Se1.3 and monolayer WTe 2 , respectively. For the case of ultra-thin WTe 2 , I also present experiments detailing investigations of the 2D bulk states, finding a semimetallic state for the trilayer and a superconducting phase for the monolayer, both of which are strongly tunable by the electric field effect. The discovery of 2D topological insulator and 2D superconductor phases within the same material, accessible by standard solid state elecrostatic gates, places WTe2 in a unique situation among both TIs and superconductors, potentially enabling gate-configurable topological devices within a homogenous material platform. by Valla Fatemi. Ph. D. 2018-05-23T16:30:07Z 2018-05-23T16:30:07Z 2018 2018 Thesis http://hdl.handle.net/1721.1/115683 1036985657 eng MIT theses are protected by copyright. They may be viewed, downloaded, or printed from this source but further reproduction or distribution in any format is prohibited without written permission. http://dspace.mit.edu/handle/1721.1/7582 180 pages application/pdf Massachusetts Institute of Technology
collection NDLTD
language English
format Others
sources NDLTD
topic Physics.
spellingShingle Physics.
Fatemi, Valla
Quantum electronic transport in atomically layered topological insulators
description Thesis: Ph. D., Massachusetts Institute of Technology, Department of Physics, 2018. === Cataloged from PDF version of thesis. === Includes bibliographical references (pages 153-180). === The merger of topology and symmetry established a new foundation for understanding the physics of condensed matter, beginning with the notion of topological insulators (TIs) for electronic systems. For the time-reversal invariant TIs, a key aspect is the "helical" mode at the boundary of the system - that is, the ID edge of a 2D topological insulator or the 2D surface of a 3D topological insulator. These helical modes represent the extreme limit of spin-orbit coupling in that the spin-degenercy has been completely lifted while preserving time-reversal symmetry. This property is crucial for proposals realizing exotic excitations like the Majorana bound state. In this thesis, I present a series of experiments investigating electronic transport through the boundary modes of 3D and 2D topological insulators, specifically Bi1.5 Sb0.5 Te1.7 Se1.3 and monolayer WTe 2 , respectively. For the case of ultra-thin WTe 2 , I also present experiments detailing investigations of the 2D bulk states, finding a semimetallic state for the trilayer and a superconducting phase for the monolayer, both of which are strongly tunable by the electric field effect. The discovery of 2D topological insulator and 2D superconductor phases within the same material, accessible by standard solid state elecrostatic gates, places WTe2 in a unique situation among both TIs and superconductors, potentially enabling gate-configurable topological devices within a homogenous material platform. === by Valla Fatemi. === Ph. D.
author2 Pablo Jarillo-Herrero.
author_facet Pablo Jarillo-Herrero.
Fatemi, Valla
author Fatemi, Valla
author_sort Fatemi, Valla
title Quantum electronic transport in atomically layered topological insulators
title_short Quantum electronic transport in atomically layered topological insulators
title_full Quantum electronic transport in atomically layered topological insulators
title_fullStr Quantum electronic transport in atomically layered topological insulators
title_full_unstemmed Quantum electronic transport in atomically layered topological insulators
title_sort quantum electronic transport in atomically layered topological insulators
publisher Massachusetts Institute of Technology
publishDate 2018
url http://hdl.handle.net/1721.1/115683
work_keys_str_mv AT fatemivalla quantumelectronictransportinatomicallylayeredtopologicalinsulators
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