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  2024 roadmap on 2D topological insulators

Weber, B., Fuhrer, M. S., Sheng, X.-L., Yang, S. A., Thomale, R., Shamim, S., et al. (2024). 2024 roadmap on 2D topological insulators. Journal of Physics: Materials, 7(2): 022501, pp. 2-47. doi:10.1088/2515-7639/ad2083.

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 Creators:
Weber, Bent1, Author
Fuhrer, Michael S.1, Author
Sheng, Xian-Lei1, Author
Yang, Shengyuan A.1, Author
Thomale, Ronny1, Author
Shamim, Saquib1, Author
Molenkamp, Laurens W.1, Author
Cobden, David1, Author
Pesin, Dmytro1, Author
Zandvliet, Harold J. W.1, Author
Bampoulis, Pantelis1, Author
Claessen, Ralph1, Author
Menges, Fabian R2, Author           
Gooth, Johannes2, Author           
Felser, Claudia3, Author           
Shekhar, Chandra4, Author           
Tadich, Anton1, Author
Zhao, Mengting1, Author
Edmonds, Mark T.1, Author
Jia, Junxiang1, Author
Bieniek, Maciej1, AuthorVäyrynen, Jukka I.1, AuthorCulcer, Dimitrie1, AuthorMuralidharan, Bhaskaran1, AuthorNadeem, Muhammad1, Author more..
Affiliations:
1External Organizations, ou_persistent22              
2Inorganic Chemistry, Max Planck Institute for Chemical Physics of Solids, Max Planck Society, ou_1863425              
3Claudia Felser, Inorganic Chemistry, Max Planck Institute for Chemical Physics of Solids, Max Planck Society, ou_1863429              
4Chandra Shekhar, Inorganic Chemistry, Max Planck Institute for Chemical Physics of Solids, Max Planck Society, ou_1863428              

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Free keywords: Condensed matter physics; Electric insulators; Functional materials; Heterojunctions; Quantum computers; Topological insulators; Topology; Tungsten; Tungsten compounds; 2d topological insulator; Condensed matter; Electronics devices; Quantum spin hall material; Quantum spin halls; Roadmap; Semiconductor heterostructure; Topological electronic; Topological insulators; Topological phase; Scanning tunneling microscopy
 Abstract: 2D topological insulators promise novel approaches towards electronic, spintronic, and quantum device applications. This is owing to unique features of their electronic band structure, in which bulk-boundary correspondences enforces the existence of 1D spin-momentum locked metallic edge states—both helical and chiral—surrounding an electrically insulating bulk. Forty years since the first discoveries of topological phases in condensed matter, the abstract concept of band topology has sprung into realization with several materials now available in which sizable bulk energy gaps—up to a few hundred meV—promise to enable topology for applications even at room-temperature. Further, the possibility of combining 2D TIs in heterostructures with functional materials such as multiferroics, ferromagnets, and superconductors, vastly extends the range of applicability beyond their intrinsic properties. While 2D TIs remain a unique testbed for questions of fundamental condensed matter physics, proposals seek to control the topologically protected bulk or boundary states electrically, or even induce topological phase transitions to engender switching functionality. Induction of superconducting pairing in 2D TIs strives to realize non-Abelian quasiparticles, promising avenues towards fault-tolerant topological quantum computing. This roadmap aims to present a status update of the field, reviewing recent advances and remaining challenges in theoretical understanding, materials synthesis, physical characterization and, ultimately, device perspectives. © 2024 The Author(s). Published by IOP Publishing Ltd.

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Language(s): eng - English
 Dates: 2024-03-052024-03-05
 Publication Status: Issued
 Pages: -
 Publishing info: -
 Table of Contents: -
 Rev. Type: -
 Identifiers: DOI: 10.1088/2515-7639/ad2083
BibTex Citekey: Weber2024
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Title: Journal of Physics: Materials
  Other : JPhys Materials
  Abbreviation : J. Phys. Mater.
Source Genre: Journal
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Publ. Info: Bristol : Institute of Physics Publishing
Pages: - Volume / Issue: 7 (2) Sequence Number: 022501 Start / End Page: 2 - 47 Identifier: CoNE: https://pure.mpg.de/cone/journals/resource/2515-7639