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Layered Graphene Growth Directly on Sapphire Substrates for Applications
Che Jia Chang
, Po Cheng Tsai
, Wei Ya Su
, Chun Yuan Huang
,
Po Tsung Lee
, Shih Yen Lin
*
*
Corresponding author for this work
Department of Photonics
Research output
:
Contribution to journal
›
Article
›
peer-review
17
Scopus citations
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Keyphrases
Sapphire Substrate
100%
Bilayer Graphene
100%
Graphene Growth
100%
Multilayered Graphene
100%
Growth Cycle
100%
CVD Growth
100%
Low Resistivity
50%
Graphene Surface
50%
Graphene
50%
Transistor
50%
Monolayer MoS2
50%
Heteroepitaxy
50%
Bottom Gate
50%
Diffusion Barrier
50%
2D Materials
50%
MoS2 Monolayer
50%
Epitaxy Growth
50%
Field-effect Mobility
50%
Graphene Channels
50%
Graphene Heterostructures
50%
Liner
50%
Van Der Waals Epitaxy
50%
Growth Form
50%
Wettability
50%
Resistivity Value
50%
Mobility Values
50%
Copper Atom
50%
Improved Crystallinity
50%
Effective Diffusion
50%
Homoepitaxy
50%
Surface Material
50%
Thin Copper Film
50%
Engineering
Sapphire Substrate
100%
Graphene
100%
Chemical Vapor Deposition
40%
Monolayers
40%
Crystallinity
20%
Deposited Film
20%
Interconnects
20%
Heterostructures
20%
Diffusion Barrier
20%
Growth Mode
20%
Layer Graphene
20%
2D Material
20%
Material Surface
20%
Molybdenum Disulfide
20%
Material Science
Graphene
100%
Sapphire
100%
Monolayers
33%
Chemical Vapor Deposition
33%
Surface (Surface Science)
33%
Electrical Resistivity
16%
Film
16%
Transistor
16%
Heterojunction
16%
Epitaxy
16%
Wettability
16%
Heteroepitaxy
16%
Two-Dimensional Material
16%
Homoepitaxy
16%
Lining
16%
Earth and Planetary Sciences
Wettability
100%
Crystallinity
100%
Molybdenum Disulfide
100%
Lining
100%