Nasouri et al., 2012 - Google Patents
Single‐wall carbon nanotubes dispersion behavior and its effects on the morphological and mechanical properties of the electrospun nanofibersNasouri et al., 2012
- Document ID
- 3799892356150932158
- Author
- Nasouri K
- Shoushtari A
- Kaflou A
- Bahrambeygi H
- Rabbi A
- Publication year
- Publication venue
- Polymer composites
External Links
Snippet
The dispersion behavior of single‐walled carbon nanotube (SWCNT) has important effects on morphological and mechanical properties of SWCNT composite nanofibers. The relationship of the dispersion conditions with morphological and mechanical characteristics …
- 239000002109 single walled nanotube 0 title abstract description 111
Similar Documents
Publication | Publication Date | Title |
---|---|---|
Nasouri et al. | Single‐wall carbon nanotubes dispersion behavior and its effects on the morphological and mechanical properties of the electrospun nanofibers | |
Li et al. | Electromagnetic interference (EMI) shielding of single-walled carbon nanotube epoxy composites | |
Foroughi et al. | Highly conductive carbon nanotube‐graphene hybrid yarn | |
Wang et al. | Preparation and characterization of graphene oxide/poly (vinyl alcohol) composite nanofibers via electrospinning | |
Datsyuk et al. | Thermal properties enhancement of epoxy resins by incorporating polybenzimidazole nanofibers filled with graphene and carbon nanotubes as reinforcing material | |
Su | Improving electrical conductivity, thermal stability, and solubility of polyaniline-polypyrrole nanocomposite by doping with anionic spherical polyelectrolyte brushes | |
Bai et al. | Improving the filler dispersion and performance of silicone rubber/multi-walled carbon nanotube composites by noncovalent functionalization of polymethylphenylsiloxane | |
Nilsson et al. | Melt spinning of conductive textile fibers with hybridized graphite nanoplatelets and carbon black filler | |
Cho et al. | Effects of block copolymer dispersant and nanotube length on reinforcement of carbon/epoxy composites | |
Shariatnia et al. | Hybrid cellulose nanocrystal-bonded carbon nanotubes/carbon fiber polymer composites for structural applications | |
Ardanuy et al. | Electrical conductivity and mechanical properties of vapor-grown carbon nanofibers/trifunctional epoxy composites prepared by direct mixing | |
Wang et al. | Mechanical reinforcement of electrospun water‐soluble polymer nanofibers using nanodiamonds | |
Mondal et al. | Role of the interface on electron transport in electro‐conductive polymer‐matrix composite: A review | |
Aliahmad et al. | Electrospun thermosetting carbon nanotube–epoxy nanofibers | |
Mei et al. | Magnetic‐field‐assisted electrospinning highly aligned composite nanofibers containing well‐aligned multiwalled carbon nanotubes | |
Nasouri et al. | Synthesis and characterization of highly dispersed multi‐walled carbon nanotubes/polyvinylpyrrolidone composite nanofibers for EMI shielding application | |
Zhang et al. | Preparation of polybenzimidazole/functionalized carbon nanotube nanocomposite films for use as protective coatings | |
Suckeveriene et al. | Literature review: Conducting carbon nanotube/polyaniline nanocomposites | |
WO2007010517A1 (en) | Nanocomposite polymers | |
Liang et al. | Electrical properties of percolative polystyrene/carbon nanofiber composites | |
Nadiv et al. | Optimal nanomaterial concentration: harnessing percolation theory to enhance polymer nanocomposite performance | |
Hunley et al. | Melt dispersion and electrospinning of non‐functionalized multiwalled carbon nanotubes in thermoplastic polyurethane | |
Kuk et al. | Robust and Flexible Polyurethane Composite Nanofibers Incorporating Multi‐Walled Carbon Nanotubes Produced by Solution Blow Spinning | |
Qian et al. | Effect of aspect ratio of multi-wall carbon nanotubes on the dispersion in ethylene-α-octene block copolymer and the properties of the Nanocomposites | |
Kang et al. | Multiwalled carbon nanotube pretreatment to enhance tensile properties, process stability, and filler dispersion of polyamide 66 nanocomposites |