Issue 20, 2014

Enhanced cross-plane thermal conductivity and high resilience of three-dimensional hierarchical carbon nanocoil–graphite nanocomposites

Abstract

Three-dimensional hierarchical carbon nanocoil–graphite (CNC–GT) nanocomposite blocks were prepared by the growth of CNCs at the interlayer of expanded GT using chemical vapor deposition followed by hot-pressing. The distribution and density of the CNCs were tuned by vacuum impregnation for catalyst loading and growth time, respectively. Helical CNCs with spring-like structures were observed by scanning electron microscopy and transmission electron microscopy. The CNC–GT blocks showed a higher density and lower porosity than GT due to the intercalation of CNC fillers. The thermal conductivities of the CNC–GT blocks in the cross-plane (λ) and in-plane (λ) directions were controlled by the consolidating pressure and growth time of the CNCs. The remarkable increase in λ and the resilience of the CNC–GT blocks were further optimized using microstructures of CNCs at the interface. The maximum λ of the CNC–GT blocks (∅ 3 cm × 2 mm) of up to 23.6 W m−1 K−1 was about five-fold higher than that of GT at 4.9 W m−1 K−1. This feature arose from improved phonon transfer in the cross-plane through intercalated CNCs at the interlayer. Moreover, a high resilience ratio of 84.1% and a low compressibility (17%) were also obtained for the CNC–GT blocks due to the excellent elasticity of CNCs. The CNC–GT blocks with high λ, good resilience properties and dimensional stability could be developed to be highly thermally conductive and resilient interface materials for heat sealing.

Graphical abstract: Enhanced cross-plane thermal conductivity and high resilience of three-dimensional hierarchical carbon nanocoil–graphite nanocomposites

Supplementary files

Article information

Article type
Paper
Submitted
08 Oct 2013
Accepted
16 Dec 2013
First published
17 Dec 2013

RSC Adv., 2014,4, 10090-10096

Enhanced cross-plane thermal conductivity and high resilience of three-dimensional hierarchical carbon nanocoil–graphite nanocomposites

W. Feng, J. Li, Y. Feng and M. Qin, RSC Adv., 2014, 4, 10090 DOI: 10.1039/C3RA45647A

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