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      Toughening of Poly(lactic acid) and Thermoplastic Cassava Starch Reactive Blends Using Graphene Nanoplatelets

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          Abstract

          Poly(lactic acid) (PLA) was reactively blended with thermoplastic cassava starch (TPCS) and functionalized with commercial graphene (GRH) nanoplatelets in a twin-screw extruder, and films were produced by cast-film extrusion. Reactive compatibilization between PLA and TPCS phases was reached by introducing maleic anhydride and a peroxide radical during the reactive blending extrusion process. Films with improved elongation at break and toughness for neat PLA and PLA- g-TPCS reactive blends were obtained by an addition of GRH nanoplatelets. Toughness of the PLA- g-TPCS-GRH was improved by ~900% and ~500% when compared to neat PLA and PLA- g-TPCS, respectively. Crack bridging was established as the primary mechanism responsible for the improvement in the mechanical properties of PLA and PLA- g-TPCS in the presence of the nanofiller due to the high aspect ratio of GRH. Scanning electron microscopy images showed a non-uniform distribution of GRH nanoplatelets in the matrix. Transmittance of the reactive blend films decreased due to the TPCS phase. Values obtained for the reactive blends showed ~20% transmittance. PLA-GRH and PLA- g-TPCS-GRH showed a reduction of the oxygen permeability coefficient with respect to PLA of around 35% and 50%, respectively. Thermal properties, molecular structure, surface roughness, XRD pattern, electrical resistivity, and color of the films were also evaluated. Biobased and compostable reactive blend films of PLA- g-TPCS compounded with GRH nanoplatelets could be suitable for food packaging and agricultural applications.

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          Physical and mechanical properties of PLA, and their functions in widespread applications - A comprehensive review.

          Poly(lactic acid) (PLA), so far, is the most extensively researched and utilized biodegradable aliphatic polyester in human history. Due to its merits, PLA is a leading biomaterial for numerous applications in medicine as well as in industry replacing conventional petrochemical-based polymers. The main purpose of this review is to elaborate the mechanical and physical properties that affect its stability, processability, degradation, PLA-other polymers immiscibility, aging and recyclability, and therefore its potential suitability to fulfill specific application requirements. This review also summarizes variations in these properties during PLA processing (i.e. thermal degradation and recyclability), biodegradation, packaging and sterilization, and aging (i.e. weathering and hygrothermal). In addition, we discuss up-to-date strategies for PLA properties improvements including components and plasticizer blending, nucleation agent addition, and PLA modifications and nanoformulations. Incorporating better understanding of the role of these properties with available improvement strategies is the key for successful utilization of PLA and its copolymers/composites/blends to maximize their fit with worldwide application needs.
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            Processing technologies for poly(lactic acid)

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              Investigation of the structure of solution grown crystals of lactide copolymers by means of chemical reactions

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                Author and article information

                Journal
                Polymers (Basel)
                Polymers (Basel)
                polymers
                Polymers
                MDPI
                2073-4360
                19 January 2018
                January 2018
                : 10
                : 1
                : 95
                Affiliations
                [1 ]School of Packaging, Michigan State University, East Lansing, MI 48824, USA; anibalbher@ 123456gmail.com (A.B.); iuysalunalan@ 123456gmail.com (I.U.U.); mariar@ 123456msu.edu (M.R.)
                [2 ]Instituto Sabato, UNSAM-CNEA, San Martin, Buenos Aires 1650, Argentina
                [3 ]Instituto de Materiales de Misiones (IMAM), CONICET-UNaM, Posadas, Misiones 3300, Argentina; schvezov@ 123456gmail.com
                [4 ]Department of Food Engineering, Faculty of Engineering, İzmir University of Economics, İzmir 35330, Turkey
                Author notes
                [* ]Correspondence: aurasraf@ 123456msu.edu ; Tel.: +1-517-432-3254
                Author information
                https://orcid.org/0000-0001-8966-6367
                https://orcid.org/0000-0002-0963-6166
                https://orcid.org/0000-0002-4378-359X
                Article
                polymers-10-00095
                10.3390/polym10010095
                6415146
                0dbf3b07-9362-448d-bf61-e20043011f60
                © 2018 by the authors.

                Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license ( http://creativecommons.org/licenses/by/4.0/).

                History
                : 21 November 2017
                : 15 January 2018
                Categories
                Article

                pla,reactive blending,biobased films,graphene,nanoreinforcement

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