Self-assembled block copolymer micelles with silver-carbon nanotube hybrid fillers for high performance thermal conduction
- Authors
- Choi, Jae Ryung; Yu, Seunggun; Jung, Haejong; Hwang, Sun Kak; Kim, Richard Hahnkee; Song, Giyoung; Cho, Sung Hwan; Bae, Insung; Hong, Soon Man; Koo, Chong Min; Park, Cheolmin
- Issue Date
- 2015-02
- Publisher
- ROYAL SOC CHEMISTRY
- Citation
- NANOSCALE, v.7, no.5, pp.1888 - 1895
- Abstract
- The development of polymer-filled composites with an extremely high thermal conductivity (TC) that is competitive with conventional metals is in great demand due to their cost-effective process, light weight, and easy shape-forming capability. A novel polymer composite with a large thermal conductivity of 153 W m(-1) K-1 was prepared based on self-assembled block copolymer micelles containing two different fillers of micron-sized silver particles and multi-walled carbon nanotubes. Simple mechanical mixing of the components followed by conventional thermal compression at a low processing temperature of 160 degrees C produced a novel composite with both structural and thermal stability that is durable for high temperature operation up to 150 degrees C as well as multiple heating and cooling cycles of Delta T = 100 degrees C. The high performance in thermal conduction of our composite was mainly attributed to the facile deformation of Ag particles during the mixing in a viscous thermoplastic medium, combined with networked carbon nanotubes uniformly dispersed in the nanoscale structural matrix of block copolymer micelles responsible for its high temperature mechanical stability. Furthermore, micro-imprinting on the composite allowed for topographically periodic surface micropatterns, which offers broader suitability for numerous micro-opto-electronic systems.
- Keywords
- HEXAGONAL BORON-NITRIDE; GRAPHITE NANOPLATELET; INTERFACE; NANOCOMPOSITES; GRAPHENE; COMPOSITES; POLYIMIDE; TRANSPORT; BEHAVIOR; FILMS; HEXAGONAL BORON-NITRIDE; GRAPHITE NANOPLATELET; INTERFACE; NANOCOMPOSITES; GRAPHENE; COMPOSITES; POLYIMIDE; TRANSPORT; BEHAVIOR; FILMS; thermal conductive composite; Ag; CNT; block copolymer
- ISSN
- 2040-3364
- URI
- https://pubs.kist.re.kr/handle/201004/125800
- DOI
- 10.1039/c4nr06390b
- Appears in Collections:
- KIST Article > 2015
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