Title :
Microscale study of electrical characteristics of epoxy-multiwall carbon nanotube nanocomposites
Author :
Njuguna, Michael K. ; Yan, Cheng ; Bell, John M. ; Yarlagadda, Prasad K D V
Author_Institution :
Sch. of Eng. Syst., Queensland Univ. of Technol., Brisbane, QLD, Australia
Abstract :
Epoxy-multiwall carbon nanotube nanocomposite thin films were prepared by spin casting. High power air plasma was used to preferentially etch a coating of epoxy and expose the underlying carbon nanotube network. Scanning electron microscopy (SEM) examination revealed well distributed and spatially connected carbon nanotube network in both the longitudinal direction (plasma etched surface) and transverse direction (through-thickness fractured surface). Topographical examination and conductive mode imaging of the plasma etched surface using atomic force microscope (AFM) in the contact mode enabled direct imaging of topography and current maps of the emdedded carbon nanotube network. Bundles consisting of at least three single carbon nanotubes form part of the percolating network observed under high resolution current maps. Predominantly non-ohmic response is obtained in this study; behaviour attributed to less than effective polymer material removal when using air plasma etching.
Keywords :
atomic force microscopy; carbon nanotubes; casting; nanocomposites; nanofabrication; scanning electron microscopy; sputter etching; AFM; C; SEM; atomic force microscopy; electrical properties; epoxy-multiwall carbon nanotube nanocomposites; fractured surface; plasma etched surface; plasma etching; scanning electron microscopy; spin casting; Carbon nanotubes; Conductivity; Nanocomposites; Plasmas; Polymers; Surface topography; Surface treatment;
Conference_Titel :
Nano/Micro Engineered and Molecular Systems (NEMS), 2011 IEEE International Conference on
Conference_Location :
Kaohsiung
Print_ISBN :
978-1-61284-775-7
DOI :
10.1109/NEMS.2011.6017405