Abstract
Poly(lactic acid) (PLA)-hemp-nanosilica (PHS) composites were prepared by impregnation of hemp woven fabric with PLA solution. Nanosilica was dispersed in the PLA solution to introduce a matrix reinforcing nanophase within the composite. The melting behavior of PLA composites was obtained by using differential scanning calorimetry (DSC) and modulated-temperature DSC (mT-DSC). Multiple melting which appeared in the non-isothermal heating curve showed that the temperature of a low melting peak increased when using a slower scanning rate. The incorporation of nanosilica in PLA composites affected the melting temperature (Tm) and sufficiently formed nucleation sites that promoted the growth of PLA crystals. Composites analyzed by a temperature-modulated program showed a broad exothermic peak before the melting peak in the non-reversing heat capacity and endothermic melting in the reversing heat capacity curve. This behavior was explained by a process of partial melting, recrystallization and remelting (mrr). The mT-DSC resolved that hemp fiber induced recrystallization and nanosilica acted as an effective nucleating agent, which promoted small and imperfect crystals that changed successively into more stable crystals through a melt-recrystallization process.
Acknowledgments
The authors would like to acknowledge the facilities, the scientific and technical assistance of the Australian Microscopy and Microanalysis Research Facility, RMIT University, Australia.
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©2014 by De Gruyter
Articles in the same Issue
- Frontmatter
- Original articles
- Curing kinetics of styrene-(ethylene-butylene)-styrene (SEBS) copolymer by peroxides in the presence of co-agents
- Synthesis and properties of novel high thermally stable polyimide-chrysotile composites as fire retardant materials
- Flame-resistant polymeric composite fibers based on nanocoating flame retardant: thermogravimetric study and production of α-Al2O3 nanoparticles by flame combustion
- Mechanical and morphological properties of high density polyethylene and polylactide blends
- Synthesis and characterization of magnetic Ni0.3 Zn0.7 Fe2 O4/polyvinyl acetate (PVAC) nanocomposite
- Effect of titanium nanofiller on the productivity and crystallinity of ethylene and propylene copolymer
- Mechanical properties of potassium hydroxide-pretreated Christmas palm fiber-reinforced polyester composites: characterization study, modeling and optimization
- Natural frequency response of laminated hybrid composite beams with and without cutouts
- Characterization of C2H2O4 doped PVA solid polymer electrolyte
- Development and characterization of homo, co and terpolyimides based on BPDA, BTDA, 6FDA and ODA with low dielectric constant
- Highly-filled hybrid composites prepared using centrifugal deposition
- Reinforcement of carboxylated acrylonitrile-butadiene rubber (XNBR) with graphene nanoplatelets with varying surface area
- Multiple melting behavior of poly(lactic acid)-hemp-silica composites using modulated-temperature differential scanning calorimetry
Articles in the same Issue
- Frontmatter
- Original articles
- Curing kinetics of styrene-(ethylene-butylene)-styrene (SEBS) copolymer by peroxides in the presence of co-agents
- Synthesis and properties of novel high thermally stable polyimide-chrysotile composites as fire retardant materials
- Flame-resistant polymeric composite fibers based on nanocoating flame retardant: thermogravimetric study and production of α-Al2O3 nanoparticles by flame combustion
- Mechanical and morphological properties of high density polyethylene and polylactide blends
- Synthesis and characterization of magnetic Ni0.3 Zn0.7 Fe2 O4/polyvinyl acetate (PVAC) nanocomposite
- Effect of titanium nanofiller on the productivity and crystallinity of ethylene and propylene copolymer
- Mechanical properties of potassium hydroxide-pretreated Christmas palm fiber-reinforced polyester composites: characterization study, modeling and optimization
- Natural frequency response of laminated hybrid composite beams with and without cutouts
- Characterization of C2H2O4 doped PVA solid polymer electrolyte
- Development and characterization of homo, co and terpolyimides based on BPDA, BTDA, 6FDA and ODA with low dielectric constant
- Highly-filled hybrid composites prepared using centrifugal deposition
- Reinforcement of carboxylated acrylonitrile-butadiene rubber (XNBR) with graphene nanoplatelets with varying surface area
- Multiple melting behavior of poly(lactic acid)-hemp-silica composites using modulated-temperature differential scanning calorimetry