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Open AccessJournal ArticleDOI

On the Use of PLA-PHB Blends for Sustainable Food Packaging Applications

TLDR
PLA-PHB blends shows highly promising perspectives for the replacement of traditional petrochemical based polymers currently used for food packaging, with an emphasis on their performance with interest in the sustainable food packaging field.
Abstract
Poly(lactic acid) (PLA) is the most used biopolymer for food packaging applications. Several strategies have been made to improve PLA properties for extending its applications in the packaging field. Melt blending approaches are gaining considerable interest since they are easy, cost-effective and readily available processing technologies at the industrial level. With a similar melting temperature and high crystallinity, poly(hydroxybutyrate) (PHB) represents a good candidate to blend with PLA. The ability of PHB to act as a nucleating agent for PLA improves its mechanical resistance and barrier performance. With the dual objective to improve PLAPHB processing performance and to obtain stretchable materials, plasticizers are frequently added. Current trends to enhance PLA-PHB miscibility are focused on the development of composite and nanocomposites. PLA-PHB blends are also interesting for the controlled release of active compounds in the development of active packaging systems. This review explains the most relevant processing aspects of PLA-PHB based blends such as the influence of polymers molecular weight, the PLA-PHB composition as well as the thermal stability. It also summarizes the recent developments in PLA-PHB formulations with an emphasis on their performance with interest in the sustainable food packaging field. PLA-PHB blends shows highly promising perspectives for the replacement of traditional petrochemical based polymers currently used for food packaging.

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Journal ArticleDOI

Polylactic acid blends: The future of green, light and tough

TL;DR: In this article, the preparation and properties of polylactic acid (PLA) polymer blends have been summarized and compared to those of traditional petrochemical-based polymers, such as polypropylene, polyamide, and polyamide.
Journal ArticleDOI

Biodegradable polymers and green-based antimicrobial packaging materials: A mini-review

TL;DR: The performance of biodegradable polymers is discussed in this article, with a particular focus on the blends of starch and other polymers, and the potential applications for bioactive coatings on antimicrobial packaging materials are also addressed.
Journal ArticleDOI

Current progress in production of biopolymeric materials based on cellulose, cellulose nanofibers, and cellulose derivatives

TL;DR: The use of cellulose fibers, nanocellulose, and cellulose derivatives as fillers or matrices in biocomposite materials is an efficient biosustainable alternative for the production of high-quality polymer composites and functional polymeric materials as discussed by the authors.
Journal ArticleDOI

Recent Advances in Bioplastics: Application and Biodegradation.

TL;DR: This review summarises the advances in drug delivery systems, specifically design of nanoparticles based on the biodegradable polymers, and provides an overview of theBiodegradation of these polymers and composites in managed and unmanaged environments.
Journal ArticleDOI

Polylactic Acid (PLA) Biocomposite: Processing, Additive Manufacturing and Advanced Applications.

TL;DR: In this article, the authors present the development and conducted studies on PLA-based natural fibre bio-composites over the last decade and present an outline of the present circumstance of natural fibre-reinforced PLA 3D printing, as well as its functions in 4D printing for applications of stimuli-responsive polymers.
References
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Journal ArticleDOI

Standardized Methods for the Determination of Antioxidant Capacity and Phenolics in Foods and Dietary Supplements

TL;DR: Methods available for the measurement of antioxidant capacity are reviewed, presenting the general chemistry underlying the assays, the types of molecules detected, and the most important advantages and shortcomings of each method.
Journal ArticleDOI

An Overview of Polylactides as Packaging Materials

TL;DR: The aim of this paper is to review the production techniques for PLAs, summarize the main properties of PLA and to delineate the main advantages and disadvantages of PLA as a polymeric packaging material.
Journal ArticleDOI

Polylactic Acid Technology

TL;DR: Polylactic acid is proving to be a viable alternative to petrochemical-based plastics for many applications It is produced from renewable resources and is biodegradable, decomposing to give H2O, CO2, and humus, the black material in soil as mentioned in this paper.
Journal ArticleDOI

Processing technologies for poly(lactic acid)

TL;DR: In this paper, structural, thermal, crystallization, and rheological properties of PLA are reviewed in relation to its converting processes, including extrusion, injection molding, injection stretch blow molding and casting.
Journal ArticleDOI

Biodegradable polymers for food packaging: a review

TL;DR: The aim of this review was to offer a complete view of the state of the art on biodegradable polymer packages for food application.
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