DocumentCode :
1599773
Title :
RF-thermal plasma assisted synthesis of metal-hybrid flakes
Author :
Myoung-Sun Shin ; Kyu-Hang Lee ; Sun-Yong Choi ; Lee, Deuk Y. ; Byungkoo Son ; Guang-Sup Cho ; Seong-In Kim
Author_Institution :
Cheorwon Plasma Res. Inst., Cheorwon, South Korea
fYear :
2013
Firstpage :
1
Lastpage :
1
Abstract :
Summary form only given.Multi-scale hybrid composite composed of nano-metal powders such as Ni, Ag, Si, Sn and graphene nano-flakes was fabricated by RF thermal plasma. Hemispherical nano-metal particles, size ranged from 20 to 300 nm depending on the type of metals, formed on graphene nano flakes surface were obtained by a simple process - physical mixing of raw materials in the thermal plasma zone. High-temperature RF thermal plasma enables the production of hybrid materials, which is attributed to selective evaporation of raw materials depending on the material property itself. The metal coverage ranged from 0.1 to 0.7 was achieved uniformly over the graphene nano flakes surface. There were several critical parameters for the nucleation and growth of nano-metals on graphene nano flakes such as plasma power, pressure, mixing ratio of metal and graphene nano flakes, and processing gases including plasma gas, quenching gas, carrier gas and sheath gas. Interestingly, the result from XRD indicates chemical bonding between nickel and silicon and graphene nano flakes at the interface. The hybrid material of nano-metal particles and graphene flakes is expected to be solutions for many practical issues of graphene compound such as a high electrical and thermal contact resistance between graphene nano flakes surface and a difficulty in a uniform dispersion over the volume.
Keywords :
X-ray diffraction; bonds (chemical); contact resistance; electrical contacts; evaporation; graphene; high-temperature effects; mixing; nanocomposites; nanofabrication; nanoparticles; nickel; nucleation; particle size; plasma materials processing; plasma sheaths; quenching (thermal); silicon; silver; thermal resistance; tin; Ag-C; Ni-C; RF-thermal plasma assisted synthesis; Si-C; Sn-C; XRD; carrier gas; chemical bonding; critical parameters; electrical contact resistance; graphene compound; graphene nanoflake surface; hemispherical nanometal particle size; high-temperature thermal plasma; hybrid material production; metal-hybrid flakes; multiscale hybrid composites; nanometal nucleation; nanometal powders; physical mixing; plasma gas; plasma power; processing gas; quenching gas; raw materials; sheath gas; size 20 nm to 300 nm; thermal contact resistance; Graphene; Nickel; Plasmas; Radio frequency; Silicon; Surface treatment;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Plasma Science (ICOPS), 2013 Abstracts IEEE International Conference on
Conference_Location :
San Francisco, CA
ISSN :
0730-9244
Type :
conf
DOI :
10.1109/PLASMA.2013.6635126
Filename :
6635126
Link To Document :
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