Effects of Conformal Nanoscale Coatings on Thermal Performance of Vertically Aligned Carbon Nanotubes

Journal Article (2018)
Author(s)

C. Silvestri (TU Delft - Tera-Hertz Sensing)

M Riccio (Università degli Studi di Napoli Federico II)

R.H. Poelma (TU Delft - Electronic Components, Technology and Materials)

A. Jovic (TU Delft - EKL Processing)

B. Morana (TU Delft - Electronic Components, Technology and Materials)

S. Vollebregt (TU Delft - Electronic Components, Technology and Materials)

A Irace (Università degli Studi di Napoli Federico II)

G. Zhang (TU Delft - Electronic Components, Technology and Materials)

P.M. Sarro (TU Delft - Electronic Components, Technology and Materials)

Research Group
Tera-Hertz Sensing
Copyright
© 2018 C. Silvestri, Michele Riccio, René H. Poelma, A. Jovic, B. Morana, S. Vollebregt, Andrea Irace, Kouchi Zhang, Pasqualina M Sarro
DOI related publication
https://doi.org/10.1002/smll.201800614
More Info
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Publication Year
2018
Language
English
Copyright
© 2018 C. Silvestri, Michele Riccio, René H. Poelma, A. Jovic, B. Morana, S. Vollebregt, Andrea Irace, Kouchi Zhang, Pasqualina M Sarro
Research Group
Tera-Hertz Sensing
Issue number
20
Volume number
14
Pages (from-to)
1-10
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Abstract

The high aspect ratio and the porous nature of spatially oriented forest-like carbon nanotube (CNT) structures represent a unique opportunity to engineer a novel class of nanoscale assemblies. By combining CNTs and conformal coatings, a 3D lightweight scaffold with tailored behavior can be achieved. The effect of nanoscale coatings, aluminum oxide (Al2O3) and nonstoichiometric amorphous silicon carbide (a-SiC), on the thermal transport efficiency of high aspect ratio vertically aligned CNTs, is reported herein. The thermal performance of the CNT-based nanostructure strongly depends on the achieved porosity, the coating material and its infiltration within the nanotube network. An unprecedented enhancement in terms of effective thermal conductivity in a-SiC coated CNTs has been obtained: 181% compared to the as-grown CNTs and Al2O3 coated CNTs. Furthermore, the integration of coated high aspect ratio CNTs in an epoxy molding compound demonstrates that, next to the required thermal conductivity, the mechanical compliance for thermal interface applications can also be achieved through coating infiltration into foam-like CNT forests.

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