Effect of Ultrasound Treatment on Bacteriostatic Activity of Piezoelectric Phb-Tio2 Hybrid Biodegradable Scaffolds Prepared by Electrospinning Technique
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Date
2023
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Volume Title
Publisher
Wiley
Open Access Color
Green Open Access
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No
Abstract
In this study, biodegradable piezoelectric poly(3-hydroxybuthyrate) (PHB) and PHB-TiO2 as well as non-piezoelectric poly(e-caprolactone) (PCL) fibrous scaffolds were successfully fabricated. First, TiO2 nanoparticles (NPs) with various content (1%, 2%, and 3% wt) were loaded into the PHB matrix to improve its tensile and wettability properties as well as piezoelectric performances. The piezoelectric property of the fibrous scaffolds was examined and a significant improvement in the piezoelectric property of hybrid fibrous scaffolds compared to pure PHB was detected. For the PHB-2%TiO2 sample, a maximum of in the range 4.5-5 V electricity production from a height of 10 cm and a mass drop of 35 g was observed after 150 degrees C heat treatment. Then, an in vitro bactericidal analysis was carried out to test the bacteriostatic effect of the produced piezoelectric biomaterials against E-cherichia coli (E coli) under ultrasound treatment. It was observed that E. coli appeared to be the most sensitive to the PHB-%2TiO(2) sample and consequently the antibacterial activity of all the samples against E. coli was dependent on the piezoelectric properties of the samples. The results indicated that the fabricated fibrous scaffolds could be considered as a promising piezoelectric biomaterial with ultrasonically-controlled bacteriostatic activity for various tissue engineering applications.
Description
ORCID
Keywords
bacteriostatic activity, PHB, piezoelectric biomaterials, scaffolds, TiO2, ultrasound, Potential Application, Nanofibers, Nanocomposites, Degradation, Zno
Turkish CoHE Thesis Center URL
Fields of Science
02 engineering and technology, 0210 nano-technology, 01 natural sciences, 0104 chemical sciences
Citation
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Q3
Scopus Q
Q2

OpenCitations Citation Count
5
Source
Journal of Applied Polymer Science
Volume
140
Issue
6
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End Page
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CrossRef : 1
Scopus : 9
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Mendeley Readers : 10
SCOPUS™ Citations
9
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Web of Science™ Citations
5
checked on Feb 04, 2026
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