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Orientation of Polylactic Acid–Chitin Nanocomposite Films via Combined Calendering and Uniaxial Drawing: Effect on Structure, Mechanical, and Thermal Properties
Luleå University of Technology, Department of Engineering Sciences and Mathematics, Material Science. Centre Català del Plàstic (CCP)—Universitat Politècnica de Catalunya Barcelona Tech (EEBE-UPC)-ePLASCOM, 08019 Barcelona, Spain.ORCID iD: 0000-0002-6857-4110
Luleå University of Technology, Department of Engineering Sciences and Mathematics, Material Science.ORCID iD: 0000-0003-0488-7625
Luleå University of Technology, Department of Engineering Sciences and Mathematics, Material Science.ORCID iD: 0000-0003-1776-2725
RISE (Research Institutes of Sweden), SE-114 28 Stockholm, Sweden.
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2021 (English)In: Nanomaterials, E-ISSN 2079-4991, Vol. 11, no 12, article id 3308Article in journal (Refereed) Published
Abstract [en]

The orientation of polymer composites is one way to increase the mechanical properties of the material in a desired direction. In this study, the aim was to orient chitin nanocrystal (ChNC)-reinforced poly(lactic acid) (PLA) nanocomposites by combining two techniques: calendering and solid-state drawing. The effect of orientation on thermal properties, crystallinity, degree of orientation, mechanical properties and microstructure was studied. The orientation affected the thermal and structural behavior of the nanocomposites. The degree of crystallinity increased from 8% for the isotropic compression-molded films to 53% for the nanocomposites drawn with the highest draw ratio. The wide-angle X-ray scattering results confirmed an orientation factor of 0.9 for the solid-state drawn nanocomposites. The mechanical properties of the oriented nanocomposite films were significantly improved by the orientation, and the pre-orientation achieved by film calendering showed very positive effects on solid-state drawn nanocomposites: The highest mechanical properties were achieved for pre-oriented nanocomposites. The stiffness increased from 2.3 to 4 GPa, the strength from 37 to 170 MPa, the elongation at break from 3 to 75%, and the work of fracture from 1 to 96 MJ/m3. This study demonstrates that the pre-orientation has positive effect on the orientation of the nanocomposites structure and that it is an extremely efficient means to produce films with high strength and toughness.

Place, publisher, year, edition, pages
MDPI, 2021. Vol. 11, no 12, article id 3308
Keywords [en]
PLA, chitin nanocrystals, nanocomposites, extrusion, compression molding, directional orientation, X-ray, mechanical properties
National Category
Bio Materials
Research subject
Wood and Bionanocomposites
Identifiers
URN: urn:nbn:se:ltu:diva-88530DOI: 10.3390/nano11123308ISI: 000736780100001PubMedID: 34947658Scopus ID: 2-s2.0-85120617228OAI: oai:DiVA.org:ltu-88530DiVA, id: diva2:1621839
Note

Validerad;2022;Nivå 2;2022-01-01 (johcin);

Funder: Bio4Energy strategic research program, The European Union, Joint European Doctoral Programme in Advanced Material Science and Engineering (DocMASE)

Available from: 2021-12-20 Created: 2021-12-20 Last updated: 2024-03-23Bibliographically approved
In thesis
1. Improving properties of poly(lactic acid) biopolymer for use in food packaging
Open this publication in new window or tab >>Improving properties of poly(lactic acid) biopolymer for use in food packaging
2022 (English)Doctoral thesis, comprehensive summary (Other academic)
Alternative title[sv]
Förbättrande egenskaper hos poly(lactic acid) biopolymer för användning i livsmedelsförpackningar
Abstract [en]

The petroleum-based plastics are widely used for food packaging applications because of their low cost, easy processability, and tunable properties to meet the specific needs of food packaging. However, these polymers are non-biodegradable, leading to a substantial amount of plastic waste in both land and marine ecosystems. Therefore, it is crucial to find biodegradable polymers from renewable resources to achieve the sustainability goals set by the United Nations. In this context, poly(lactic acid) (PLA) biopolymer is a potential candidate due to its biodegradability, low toxicity, and eco-friendly behavior; it also has excellent mechanical properties, transparency, and economic viability in comparison to many other biopolymers. However, despite the aforementioned benefits, PLA has disadvantages that limit its use in food packaging applications. These include inherent brittleness, poor melt strength, and moderate gas barrier performance. The primary objective of this thesis was to improve these properties of PLA by producing nanocomposites with biopolymer, processing aids, and nano-size reinforcement, as well as modifying by processing to meet the requirements for food packaging applications.

In this work, PLA and PLA-poly(hydroxybutyrate) (PHB) blend nanocomposites with chitin nanocrystal (ChNC) were prepared via a liquid-assisted extrusion process. Glyceroltriacetate (GTA), triethyl citrate (TEC), and lactic acid oligomer (OLA) were used as plasticizers/compatibilizers, dispersing, and processing aids. The effect of the addition of PHB, chitin nanocrystals (ChNCs), and dispersing agents on the properties of PLA was studied. The effect of different processing techniques, such as iso-thermal crystallization as well as the melt-state and solid-state drawing on the properties of the PLA nanocomposites were also investigated. In addition, the influence of ChNCs and liquid assisted extrusion on the processing and properties of blown films were assessed.

The results of the first study demonstrated that the dispersion and distribution of ChNCs in the PLA matrix progressively improved with increasing TEC dispersing aid content, with the effect being most pronounced in the nanocomposite containing 15 wt% plasticizers. PLA with 15 wt% of TEC resulted in enhanced flexibility and toughness, but negatively influenced its mechanical and thermal properties; however, the incorporation of 1 wt% ChNCs minimizes these effects. In the second study, it was shown that the polymer chain orientation of PLA/ChNC nanocomposite achieved via a combination of melt state and solid-state drawing resulted in a material with excellent mechanical properties, including an increase in toughness of nearly 100-fold compared to that of unoriented nanocomposite film. The orientation of the nanocomposite also enhanced the material's crystallinity. In the third and fourth studies, it was found that the crystallinity of PLA was increased by using an isothermal crystallization process and the addition of 25 wt% PHB. The crystallinity was further enhanced by the addition of a very small amount of ChNC (1 wt%), which acted as a nucleation agent, resulting in a faster crystallization rate and enhanced crystallinity in both cases. The nanocomposites PLA/ChNC or PLAPHB/ChNC with ChNCs, higher crystallinity, and/or orientation created a more tortuous path for gas molecules resulting in significant improvements in the O2 and CO2 barrier performance. In the final study, it was demonstrated that the PLA-PHB/ChNCs nanocomposite produced by liquid-assisted extrusion exhibited a stable process during the film-blowing operation and exhibited smooth and homogenous surface film compared to the nanocomposite produced via conventional melt compounding. Moreover, the blown film exhibited comparable mechanical properties with petroleum polymers and also degraded within 45 days under standard composting conditions.

In conclusion, this thesis shows that the properties of PLA can be tailored through the composition of the blend and nanocomposite, or during the processing of the material to make it suitable for food packaging applications. It was also demonstrated that the processing technique in this study can be a step forward for the large-scale production of bionanocomposites.

Place, publisher, year, edition, pages
Luleå: Luleå University of Technology, 2022. p. 100
Series
Doctoral thesis / Luleå University of Technology 1 jan 1997 → …, ISSN 1402-1544
Keywords
biopolymer, poly(lactic acid), chitin nanocrystals, barrier properties, liquid assisted extrusion
National Category
Composite Science and Engineering
Research subject
Wood and Bionanocomposites
Identifiers
urn:nbn:se:ltu:diva-93473 (URN)978-91-8048-172-4 (ISBN)978-91-8048-173-1 (ISBN)
Public defence
2022-12-01, E246, Luleå university of Technology, Luleå, 10:00 (English)
Opponent
Supervisors
Funder
EU, Horizon 2020, NewPack (Grant number: 792261)The Kempe Foundations, Infrastructure
Available from: 2022-10-06 Created: 2022-10-05 Last updated: 2024-09-16Bibliographically approved

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Singh, ShikhaPatel, Mitul KumarGeng, ShiyuHerrera, NataliaSchwendemann, DanielOksman, Kristiina

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