Fabrication and Comparative Study of Large‐Diameter Multi‐Walled Carbon Nanotubes Filled Chitosan, Epoxy, and Polypropylene Composites
Gulnaz Gahramanova, Tarana Orujova, Turan Mammadova, Manuel Baumgartner, Bodo Baumgartner, Njomza Isufaj, Telli Hamzayeva, Jiji Abraham, Sabu Tomas, Bernhard C. Bayer, Rasim JabbarovABSTRACT
This study presents a systematic comparative investigation of large‐diameter (100–110 nm) multi‐walled carbon nanotube (MWCNT) reinforced composites utilizing three structurally distinct polymer matrices: chitosan (CS), epoxy (EP), and polypropylene (PP). Synthesized via aerosol‐assisted chemical vapor deposition, the MWCNTs were incorporated at concentrations ranging from 0.5 to 3 wt.%. The composite properties were evaluated through a comprehensive suite of analytical techniques, including SEM for morphology, FTIR and Raman spectroscopy for structural/chemical characterization, thermogravimetric analysis for thermal stability, laser flash analysis for thermal conductivity, and detailed DC/AC electrical characterization to assess charge transport dynamics. Experimental results demonstrate that the percolation threshold lies at approximately 1.0 wt.% for the EP and PP systems, while the CS‐based composite exhibits enhanced charge transport at this concentration. At 3 wt.% loading, all composites demonstrate ohmic, quasi‐metallic behavior. While all composites achieve a robust percolative network at 3 wt.% filler loading, the AC electrical characterization highlights distinct matrix‐dependent charge transport dynamics. These findings underscore the critical role of polymer‐filler interfacial interactions in governing functionality, positioning the MWCNT/CS composite as a promising candidate for eco‐friendly biomedical interfaces and advanced flexible electronics.