4.6 Article

PLA Electrospun Fibers Reinforced with Organic and Inorganic Nanoparticles: A Comparative Study

Journal

MOLECULES
Volume 26, Issue 16, Pages -

Publisher

MDPI
DOI: 10.3390/molecules26164925

Keywords

electrospinning; PLA; organic nanoparticles; inorganic nanoparticles

Funding

  1. [MAT2017-88123-P]
  2. [PCIN-2017-036]

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This study investigated the morphological, thermal, and mechanical properties of electrospun nanocomposite fibers reinforced with organic and inorganic nanoparticles. The addition of both untreated and functionalized CNC improved fiber crystallinity, while organic and inorganic nanoparticles decreased elastic modulus and tensile strength but increased elongation at break. Furthermore, all reinforced systems degraded under composting conditions after 35 days.
In this work, different poly (lactic acid) (PLA)-based nanocomposite electrospun fibers, reinforced with both organic and inorganic nanoparticles, were obtained. As organic fibers, cellulose nanocrystals, CNC, both neat and functionalized by grafting from reaction, chitosan and graphene were used; meanwhile, hydroxyapatite and silver nanoparticles were used as inorganic fibers. All of the nanoparticles were added at 1 wt% with respect to the PLA matrix in order to be able to compare their effect. The main aim of this work was to study the morphological, thermal and mechanical properties of the different systems, looking for differences between the effects of the addition of organic or inorganic nanoparticles. No differences were found in either the glass transition temperature or the melting temperature between the different electrospun systems. However, systems reinforced with both neat and functionalized CNC exhibited an enhanced degree of crystallinity of the electrospun fibers, by up to 12.3%. From a mechanical point of view, both organic and inorganic nanoparticles exhibited a decreased elastic modulus and tensile strength in comparison to neat electrospun PLA fibers, improving their elongation at break. Furthermore, all of the organic and inorganic reinforced systems disintegrated under composting conditions after 35 days.

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