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Three-dimensional micro structured nanocomposite beams by microfluidic infiltration

L L Lebel et al 2009 J. Micromech. Microeng. 19 125009 (7pp)   doi: 10.1088/0960-1317/19/12/125009  Help

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L L Lebel1, B Aïssa2, O A Paez1, M A El Khakani2 and D Therriault1
1 Center for Applied Research on Polymers (CREPEC) Mechanical Engineering Department, École Polytechnique de Montréal, PO Box 6079, Station 'Centre-Ville', Montreal, H3C 3A7, Canada
2 Institut National de la Recherche Scientifique, INRS-Énergie, Matériaux et Télécommunications, 1650 Lionel-Boulet Blvd, Varennes, QC, J3X 1S2, Canada
E-mail: daniel.therriault@polymtl.ca

Abstract. Three-dimensional (3D) micro structured beams reinforced with a single-walled carbon nanotube (C-SWNT)/polymer nanocomposite were fabricated using an approach based on the infiltration of 3D microfluidic networks. The 3D microfluidic network was first fabricated by the direct-write assembly method, which consists of the robotized deposition of fugitive ink filaments on an epoxy substrate, forming thereby a 3D micro structured scaffold. After encapsulating the 3D micro-scaffold structure with an epoxy resin, the fugitive ink was liquefied and removed, resulting in a 3D network of interconnected microchannels. This microfluidic network was then infiltrated by a polymer loaded with C-SWNTs and subsequently cured. Prior to their incorporation in the polymer matrix, the UV-laser synthesized C-SWNTs were purified, functionalized and dispersed into the matrix using a three-roll mixing mill. The final samples consist of rectangular beams having a complex 3D skeleton structure of C-SWNT/polymer nanocomposite fibers, adapted to offer better performance under flexural solicitation. Dynamic mechanical analysis in flexion showed an increase of 12.5% in the storage modulus compared to the resin infiltrated beams. The nanocomposite infiltration of microfluidic networks demonstrated here opens new prospects for the achievement of 3D reinforced micro structures.

Print publication: Issue 12 (December 2009)
Received 13 May 2009, in final form 15 September 2009
Published 22 October 2009

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