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Terahertz Absorptance in MoS
2
/Graphene Nanoribbon Heterostructures
O. Samy
, T. Otsuji
,
A. El Moutaouakil
Department of Electrical and Communication Engineering
Research output
:
Chapter in Book/Report/Conference proceeding
›
Conference contribution
2
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Citations (Scopus)
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2
/Graphene Nanoribbon Heterostructures'. Together they form a unique fingerprint.
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Keyphrases
Graphene
100%
Heterostructure
100%
Terahertz Range
100%
Molybdenite
100%
Graphene Nanoribbon
100%
Terahertz
100%
Absorptance
100%
Nanoribbon
75%
Absorption Frequency
75%
Terahertz Frequency
50%
Diagnosis System
25%
Communication Systems
25%
Band Gap
25%
Electronic Properties
25%
Optical Properties
25%
Resonant Frequency
25%
Substrate Thickness
25%
Food Industry
25%
Structure Performance
25%
Computational Model
25%
Medical Imaging
25%
Absorber
25%
Cancer Diagnosis
25%
Large Band Gap
25%
Communication Security
25%
Promising Applications
25%
High Transmittance
25%
Terahertz Applications
25%
Plasmonic Resonance
25%
Vertical Gate
25%
SiO2 Substrate
25%
Graphene Absorption
25%
Medical Food
25%
Carrier Confinement
25%
Cancer Communication
25%
Wide Bandgap
25%
Small Bandgap
25%
Gate Voltage
25%
Monolayer MoS2
25%
Security Scanning
25%
Material Science
Heterojunction
100%
Graphene
100%
Nanoribbon
100%
Monolayers
14%
Electronic Property
14%
Optical Property
14%
Physics
Graphene
100%
Absorptance
100%
Energy Gaps (Solid State)
28%
Broadband
14%
Transmittance
14%
Computational Modeling
14%
Optical Property
14%