Biobased Composites of Poly(Lactic Acid) Melt Compounded with Bacterial and Vegetal Nanocelluloses Incorporated through Different Strategies

Author:

Bovi Jimena12,Delgado Juan Francisco123ORCID,de la Osa Orlando3,Peltzer Mercedes Ana34ORCID,Bernal Celina Raquel12,Foresti María Laura12ORCID

Affiliation:

1. Universidad de Buenos Aires, Facultad de Ingeniería, Buenos Aires C1127AAR, Argentina

2. CONICET—Universidad de Buenos Aires, Instituto de Tecnología en Polímeros y Nanotecnología (ITPN), Buenos Aires C1127AAR, Argentina

3. Universidad Nacional de Quilmes, Departamento de Ciencia y Tecnología, Laboratorio de Obtención, Modificación, Caracterización y Evaluación de Materiales (LOMCEM), Quilmes B1876BXD, Argentina

4. Consejo Nacional de Investigaciones Científicas y Técnicas (CONICET), Buenos Aires C1425FQB, Argentina

Abstract

In the current contribution, bacterial nanocellulose obtained from a by-product of Kombucha tea production and vegetal nanocellulose isolated from milled rice husks were employed as fillers of PLA-based composites prepared by intensive mixing followed by compression molding. Given the challenges associated with the incorporation of nanocelluloses—initially obtained as aqueous suspensions—into melt compounding processes, and also with achieving a proper dispersion of the hydrophilic nanofillers within PLA, three different nanofibrils incorporation strategies were studied: i.e., direct mixing of dried milled nanocelluloses and PLA; masterbatching by solvent casting of native nanocelluloses followed by melt compounding; and masterbatching by solvent casting of acetylated nanocelluloses followed by melt compounding. Composites with varying filler content (from 0.5 wt.% to 7 wt.%) were characterized in terms of morphology, optical properties, and mechanical performance. Results revealed the relative suitability of each strategy employed to promote nanocelluloses dispersion within the PLA matrix. PLA/nanocellulose masterbatches prepared by solvent casting proved to be particularly useful for feeding the nanocelluloses into the processing equipment in a dry state with limited hornification. Acetylation also contributed to a better dispersion of both nanocelluloses within the PLA matrix, although no clear positive impact on the mechanical properties of the films was observed. Finally, filler loading played an important role in the films’ properties by increasing their stiffness while reducing their translucency.

Funder

University of Buenos Aires

Agencia Nacional de Promoción Científica y Tecnológica of Argentina

Publisher

MDPI AG

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