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Growth and Strain Engineering of Trigonal Te for Topological Quantum Phases in Non-Symmorphic Chiral Crystals
by
Hironaka, Takayuki
, Welch, Katie
, Churchill, Hugh
, Pandey, Krishna
, Basnet, Rabindra
, Davari, Shiva
, Hu, Jin
, Doha, M.
in
Curvature
/ Electron transport
/ helical materials
/ Low pressure
/ MATERIALS SCIENCE
/ nanowire
/ Nanowires
/ Physical vapor deposition
/ Raman spectra
/ Shear strain
/ Spectrum analysis
/ strain engineering
/ Symmetry
/ topological semimetal
/ Topology
/ Weyl semimetal
2019
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Growth and Strain Engineering of Trigonal Te for Topological Quantum Phases in Non-Symmorphic Chiral Crystals
by
Hironaka, Takayuki
, Welch, Katie
, Churchill, Hugh
, Pandey, Krishna
, Basnet, Rabindra
, Davari, Shiva
, Hu, Jin
, Doha, M.
in
Curvature
/ Electron transport
/ helical materials
/ Low pressure
/ MATERIALS SCIENCE
/ nanowire
/ Nanowires
/ Physical vapor deposition
/ Raman spectra
/ Shear strain
/ Spectrum analysis
/ strain engineering
/ Symmetry
/ topological semimetal
/ Topology
/ Weyl semimetal
2019
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Do you wish to request the book?
Growth and Strain Engineering of Trigonal Te for Topological Quantum Phases in Non-Symmorphic Chiral Crystals
by
Hironaka, Takayuki
, Welch, Katie
, Churchill, Hugh
, Pandey, Krishna
, Basnet, Rabindra
, Davari, Shiva
, Hu, Jin
, Doha, M.
in
Curvature
/ Electron transport
/ helical materials
/ Low pressure
/ MATERIALS SCIENCE
/ nanowire
/ Nanowires
/ Physical vapor deposition
/ Raman spectra
/ Shear strain
/ Spectrum analysis
/ strain engineering
/ Symmetry
/ topological semimetal
/ Topology
/ Weyl semimetal
2019
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Growth and Strain Engineering of Trigonal Te for Topological Quantum Phases in Non-Symmorphic Chiral Crystals
Journal Article
Growth and Strain Engineering of Trigonal Te for Topological Quantum Phases in Non-Symmorphic Chiral Crystals
2019
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Overview
Strained trigonal Te has been predicted to host Weyl nodes supported by a non-symmorphic chiral symmetry. Using low-pressure physical vapor deposition, we systematically explored the growth of trigonal Te nanowires with naturally occurring strain caused by curvature of the wires. Raman spectra and high mobility electronic transport attest to the highly crystalline nature of the wires. Comparison of Raman spectra for both straight and curved nanowires indicates a breathing mode that is significantly broader and shifted in frequency for the curved wires. Strain induced by curvature during growth therefore may provide a simple pathway to investigate topological phases in trigonal Te.
Publisher
MDPI AG,MDPI
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