Dynamic mechanical analysis of polyethylene terephthalate/hydroxyapatite biocomposites for tissue engineering applications

Synthetic biomaterials are widely used for the treatment of diseased or damaged tissue in the field of tissue engineering. Polyethylene terephthalate (PET) is a synthetic thermoplastic engineering polymer with high commercial and industrial interest and has been widely used as implant material in bi...

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Main Authors: S.A.P. Sughanthy, M.N.M. Ansari, A. Atiqah
Format: Article
Language:English
Published: Elsevier 2020-03-01
Series:Journal of Materials Research and Technology
Online Access:http://www.sciencedirect.com/science/article/pii/S2238785419304521
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author S.A.P. Sughanthy
M.N.M. Ansari
A. Atiqah
author_facet S.A.P. Sughanthy
M.N.M. Ansari
A. Atiqah
author_sort S.A.P. Sughanthy
collection DOAJ
description Synthetic biomaterials are widely used for the treatment of diseased or damaged tissue in the field of tissue engineering. Polyethylene terephthalate (PET) is a synthetic thermoplastic engineering polymer with high commercial and industrial interest and has been widely used as implant material in biomedical engineering. Despite that, PET has limited applications due to its high hydrophobicity. Hydroxyapatite (HA) is one of the known biocompatible ceramic for the development of porous scaffolds for bone replacement and tissue engineering due to its resemblance to the mineral constituents of human bones and teeth. Therefore, HA was functionalized into the PET matrix in order to improve the limitation. In this research, PET-HA nano-biocomposite scaffold was electrospun using the electrospinning system. PET and HA were dissolved using trifluoroacetic acid (TFA) and dichloromethane (DCM). The nanofibrous scaffolds were produced at optimum process parameters. The morphology studies were performed using a Scanning Electron Microscope (SEM) and thermomechanical properties were evaluated using Dynamic Mechanical Analysis (DMA). From the morphology analysis, PET-HA nano-biocomposite scaffold which composed of 96% of PET and 4% of HA, has obtained the largest fiber diameter. The DMA analysis showed that the addition of HA improved mechanical properties. However, PET-HA nano-biocomposite scaffold composed of 98% of PET and 2% of HA was preferred as it has the lower value of storage and loss modulus because the application was focusing on the skin where the more flexible scaffold was needed. The PET-HA nano-biocomposite scaffold fabricated has good potential to be used in tissue engineering applications. Keywords: Biomaterials, Polyethylene terephthalate (PET), Hydroxyapatite (HA), Dynamic mechanical analysis (DMA), Tissue engineering
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spelling doaj.art-b67244cde2f14b6bb21d50b12d70dcfa2022-12-21T22:49:21ZengElsevierJournal of Materials Research and Technology2238-78542020-03-019223502356Dynamic mechanical analysis of polyethylene terephthalate/hydroxyapatite biocomposites for tissue engineering applicationsS.A.P. Sughanthy0M.N.M. Ansari1A. Atiqah2Department of Mechanical Engineering, Universiti Tenaga Nasional, 43000 Kajang, Selangor, MalaysiaInstitute of Power Engineering, Universiti Tenaga Nasional, 43000 Kajang, Selangor, Malaysia; Corresponding author.Institute of Power Engineering, Universiti Tenaga Nasional, 43000 Kajang, Selangor, MalaysiaSynthetic biomaterials are widely used for the treatment of diseased or damaged tissue in the field of tissue engineering. Polyethylene terephthalate (PET) is a synthetic thermoplastic engineering polymer with high commercial and industrial interest and has been widely used as implant material in biomedical engineering. Despite that, PET has limited applications due to its high hydrophobicity. Hydroxyapatite (HA) is one of the known biocompatible ceramic for the development of porous scaffolds for bone replacement and tissue engineering due to its resemblance to the mineral constituents of human bones and teeth. Therefore, HA was functionalized into the PET matrix in order to improve the limitation. In this research, PET-HA nano-biocomposite scaffold was electrospun using the electrospinning system. PET and HA were dissolved using trifluoroacetic acid (TFA) and dichloromethane (DCM). The nanofibrous scaffolds were produced at optimum process parameters. The morphology studies were performed using a Scanning Electron Microscope (SEM) and thermomechanical properties were evaluated using Dynamic Mechanical Analysis (DMA). From the morphology analysis, PET-HA nano-biocomposite scaffold which composed of 96% of PET and 4% of HA, has obtained the largest fiber diameter. The DMA analysis showed that the addition of HA improved mechanical properties. However, PET-HA nano-biocomposite scaffold composed of 98% of PET and 2% of HA was preferred as it has the lower value of storage and loss modulus because the application was focusing on the skin where the more flexible scaffold was needed. The PET-HA nano-biocomposite scaffold fabricated has good potential to be used in tissue engineering applications. Keywords: Biomaterials, Polyethylene terephthalate (PET), Hydroxyapatite (HA), Dynamic mechanical analysis (DMA), Tissue engineeringhttp://www.sciencedirect.com/science/article/pii/S2238785419304521
spellingShingle S.A.P. Sughanthy
M.N.M. Ansari
A. Atiqah
Dynamic mechanical analysis of polyethylene terephthalate/hydroxyapatite biocomposites for tissue engineering applications
Journal of Materials Research and Technology
title Dynamic mechanical analysis of polyethylene terephthalate/hydroxyapatite biocomposites for tissue engineering applications
title_full Dynamic mechanical analysis of polyethylene terephthalate/hydroxyapatite biocomposites for tissue engineering applications
title_fullStr Dynamic mechanical analysis of polyethylene terephthalate/hydroxyapatite biocomposites for tissue engineering applications
title_full_unstemmed Dynamic mechanical analysis of polyethylene terephthalate/hydroxyapatite biocomposites for tissue engineering applications
title_short Dynamic mechanical analysis of polyethylene terephthalate/hydroxyapatite biocomposites for tissue engineering applications
title_sort dynamic mechanical analysis of polyethylene terephthalate hydroxyapatite biocomposites for tissue engineering applications
url http://www.sciencedirect.com/science/article/pii/S2238785419304521
work_keys_str_mv AT sapsughanthy dynamicmechanicalanalysisofpolyethyleneterephthalatehydroxyapatitebiocompositesfortissueengineeringapplications
AT mnmansari dynamicmechanicalanalysisofpolyethyleneterephthalatehydroxyapatitebiocompositesfortissueengineeringapplications
AT aatiqah dynamicmechanicalanalysisofpolyethyleneterephthalatehydroxyapatitebiocompositesfortissueengineeringapplications