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Synthesis of sea urchin-like carbon nanotubes on nano-diamond powder
E. J. Hwang
, S. K. Lee
, M. G. Jeong
, Y. B. Lee
, D. S. Lim
*
*
Corresponding author for this work
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Article
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peer-review
7
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Keyphrases
3-Aminopropyltrimethoxysilane
12%
Agglomeration
12%
Atomic Properties
12%
Atomic Structure
12%
Carbon Nanotube Morphology
12%
Carbon Nanotubes
100%
Chemical Inertness
12%
Chemical Stability
12%
Electrical Properties
12%
Electron Transmission
12%
Entanglement
12%
Ethanol
12%
High Aspect Ratio
12%
High Hardness
12%
High Mechanical Properties
12%
Iron(III) Chloride
12%
Linker
12%
Mean Diameter
12%
Mechanical Properties
12%
Metal Catalyst
12%
Milling Process
12%
Milling System
12%
Multi-walled Carbon Nanotubes (MWCNTs)
12%
Nanodiamond Particles
12%
Nanodiamond Powders
100%
Property Stability
12%
Scanning Electron Microscopy
12%
Sea Urchin
100%
Silanization
12%
Small Aspect Ratio
12%
Thermal Conductivity
12%
Thermal CVD
12%
Thermal Properties
12%
Transmission Electron Microscopy
12%
Zirconia Beads
12%
Material Science
Atomic Structure
10%
Carbon Nanotube
100%
Chemical Vapor Deposition
10%
Diamond
100%
Scanning Electron Microscopy
10%
Surface (Surface Science)
10%
Thermal Chemical Vapor Deposition
10%
Thermal Conductivity
10%
Thermal Property
10%
Transmission Electron Microscopy
10%
Zirconia
10%
Engineering
Aspect Ratio
10%
Carbon Nanotube
100%
Chemical Inertness
10%
Chemical Vapor Deposition
20%
Entanglement
10%
High Aspect Ratio
10%
Nano Diamond
100%
Silanization
10%
Thermal Conductivity
10%
Chemical Engineering
Carbon Nanotube
100%
Chemical Vapor Deposition
20%
Nanodiamond
100%
Thermal Conductivity
10%