Cargando…

Investigation of Thermal and Thermomechanical Properties of Biodegradable PLA/PBSA Composites Processed via Supercritical Fluid-Assisted Foam Injection Molding

Bio-based polymer foams have been gaining immense attention in recent years due to their positive contribution towards reducing the global carbon footprint, lightweighting, and enhancing sustainability. Currently, polylactic acid (PLA) remains the most abundant commercially consumed biopolymer, but...

Descripción completa

Detalles Bibliográficos
Autores principales: Pradeep, Sai Aditya, Kharbas, Hrishikesh, Turng, Lih-Sheng, Avalos, Abraham, Lawrence, Joseph G., Pilla, Srikanth
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2017
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6432243/
https://www.ncbi.nlm.nih.gov/pubmed/30970698
http://dx.doi.org/10.3390/polym9010022
_version_ 1783406090021502976
author Pradeep, Sai Aditya
Kharbas, Hrishikesh
Turng, Lih-Sheng
Avalos, Abraham
Lawrence, Joseph G.
Pilla, Srikanth
author_facet Pradeep, Sai Aditya
Kharbas, Hrishikesh
Turng, Lih-Sheng
Avalos, Abraham
Lawrence, Joseph G.
Pilla, Srikanth
author_sort Pradeep, Sai Aditya
collection PubMed
description Bio-based polymer foams have been gaining immense attention in recent years due to their positive contribution towards reducing the global carbon footprint, lightweighting, and enhancing sustainability. Currently, polylactic acid (PLA) remains the most abundant commercially consumed biopolymer, but suffers from major drawbacks such as slow crystallization rate and poor melt processability. However, blending of PLA with a secondary polymer would enhance the crystallization rate and the thermal properties based on their compatibility. This study investigates the physical and compatibilized blends of PLA/poly (butylene succinate-co-adipate) (PBSA) processed via supercritical fluid-assisted (ScF) injection molding technology using nitrogen (N(2)) as a facile physical blowing agent. Furthermore, this study aims at understanding the effect of blending and ScF foaming of PLA/PBSA on crystallinity, melting, and viscoelastic behavior. Results show that compatibilization, upon addition of triphenyl phosphite (TPP), led to an increase in molecular weight and a shift in melting temperature. Additionally, the glass transition temperature (T(g)) obtained from the tanδ curve was observed to be in agreement with the T(g) value predicted by the Gordon–Taylor equation, further confirming the compatibility of PLA and PBSA. The compatibilization of ScF-foamed PLA–PBSA was found to have an increased crystallinity and storage modulus compared to their physically foamed counterparts.
format Online
Article
Text
id pubmed-6432243
institution National Center for Biotechnology Information
language English
publishDate 2017
publisher MDPI
record_format MEDLINE/PubMed
spelling pubmed-64322432019-04-02 Investigation of Thermal and Thermomechanical Properties of Biodegradable PLA/PBSA Composites Processed via Supercritical Fluid-Assisted Foam Injection Molding Pradeep, Sai Aditya Kharbas, Hrishikesh Turng, Lih-Sheng Avalos, Abraham Lawrence, Joseph G. Pilla, Srikanth Polymers (Basel) Article Bio-based polymer foams have been gaining immense attention in recent years due to their positive contribution towards reducing the global carbon footprint, lightweighting, and enhancing sustainability. Currently, polylactic acid (PLA) remains the most abundant commercially consumed biopolymer, but suffers from major drawbacks such as slow crystallization rate and poor melt processability. However, blending of PLA with a secondary polymer would enhance the crystallization rate and the thermal properties based on their compatibility. This study investigates the physical and compatibilized blends of PLA/poly (butylene succinate-co-adipate) (PBSA) processed via supercritical fluid-assisted (ScF) injection molding technology using nitrogen (N(2)) as a facile physical blowing agent. Furthermore, this study aims at understanding the effect of blending and ScF foaming of PLA/PBSA on crystallinity, melting, and viscoelastic behavior. Results show that compatibilization, upon addition of triphenyl phosphite (TPP), led to an increase in molecular weight and a shift in melting temperature. Additionally, the glass transition temperature (T(g)) obtained from the tanδ curve was observed to be in agreement with the T(g) value predicted by the Gordon–Taylor equation, further confirming the compatibility of PLA and PBSA. The compatibilization of ScF-foamed PLA–PBSA was found to have an increased crystallinity and storage modulus compared to their physically foamed counterparts. MDPI 2017-01-09 /pmc/articles/PMC6432243/ /pubmed/30970698 http://dx.doi.org/10.3390/polym9010022 Text en © 2017 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/).
spellingShingle Article
Pradeep, Sai Aditya
Kharbas, Hrishikesh
Turng, Lih-Sheng
Avalos, Abraham
Lawrence, Joseph G.
Pilla, Srikanth
Investigation of Thermal and Thermomechanical Properties of Biodegradable PLA/PBSA Composites Processed via Supercritical Fluid-Assisted Foam Injection Molding
title Investigation of Thermal and Thermomechanical Properties of Biodegradable PLA/PBSA Composites Processed via Supercritical Fluid-Assisted Foam Injection Molding
title_full Investigation of Thermal and Thermomechanical Properties of Biodegradable PLA/PBSA Composites Processed via Supercritical Fluid-Assisted Foam Injection Molding
title_fullStr Investigation of Thermal and Thermomechanical Properties of Biodegradable PLA/PBSA Composites Processed via Supercritical Fluid-Assisted Foam Injection Molding
title_full_unstemmed Investigation of Thermal and Thermomechanical Properties of Biodegradable PLA/PBSA Composites Processed via Supercritical Fluid-Assisted Foam Injection Molding
title_short Investigation of Thermal and Thermomechanical Properties of Biodegradable PLA/PBSA Composites Processed via Supercritical Fluid-Assisted Foam Injection Molding
title_sort investigation of thermal and thermomechanical properties of biodegradable pla/pbsa composites processed via supercritical fluid-assisted foam injection molding
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6432243/
https://www.ncbi.nlm.nih.gov/pubmed/30970698
http://dx.doi.org/10.3390/polym9010022
work_keys_str_mv AT pradeepsaiaditya investigationofthermalandthermomechanicalpropertiesofbiodegradableplapbsacompositesprocessedviasupercriticalfluidassistedfoaminjectionmolding
AT kharbashrishikesh investigationofthermalandthermomechanicalpropertiesofbiodegradableplapbsacompositesprocessedviasupercriticalfluidassistedfoaminjectionmolding
AT turnglihsheng investigationofthermalandthermomechanicalpropertiesofbiodegradableplapbsacompositesprocessedviasupercriticalfluidassistedfoaminjectionmolding
AT avalosabraham investigationofthermalandthermomechanicalpropertiesofbiodegradableplapbsacompositesprocessedviasupercriticalfluidassistedfoaminjectionmolding
AT lawrencejosephg investigationofthermalandthermomechanicalpropertiesofbiodegradableplapbsacompositesprocessedviasupercriticalfluidassistedfoaminjectionmolding
AT pillasrikanth investigationofthermalandthermomechanicalpropertiesofbiodegradableplapbsacompositesprocessedviasupercriticalfluidassistedfoaminjectionmolding