Iqbal Mudassir, Zafar Hadia, Mahmood Azhar, Niazi Muhammad Bilal Khan, Aslam Muhammad Waqar
Department of Chemistry, School of Natural Sciences, National University of Sciences and Technology, Islamabad 44000, Pakistan.
School of Chemical and Materials Engineering, National University of Sciences and Technology, Islamabad 44000, Pakistan.
Polymers (Basel). 2020 Sep 17;12(9):2112. doi: 10.3390/polym12092112.
This research endeavor aims to develop polyvinyl alcohol (PVA) based films capable of blends with silver nanoparticles (Ag-NPs) for improved antibacterial properties and good mechanical strength to widen its scope in the field of wound dressing and bandages. This study reports synthesis of propylamine-substituted PVA (PA-PVA), Ag-NPs via chemical and green methods (starch capping) and their blended films in various proportions. Employment of starch-capped Ag-NPs as nanofillers into PVA films has substantially improved the above-mentioned properties in the ensuing nanocomposites. Synthesis of PA-PVA, starch-capped Ag-NPs and blended films were well corroborated with UV/Vis spectroscopy, FTIR, NMR, XRD and SEM analysis. Synthesized Ag-NPs were of particle shape and have an average size 20 nm and 40 nm via green and chemical synthesis, respectively. The successful blending of Ag-NPs was yielded up to five weight per weight into PA-PVA film as beyond this self-agglomeration of Ag-NPs was observed. Antibacterial assay has shown good antimicrobial activities by five weight per weight Ag-NPs(G)-encapsulated into PA-PVA blended film, i.e., 13 mm zone inhibition against and 11 mm zone inhibition against . Physical strength was measured in the terms of young's modulus via tensile stress-strain curves of blended films. The five weight per weight Ag-NPs(G)/PA-PVA blend film showed maximum tensile strength 168.2 MPa while three weight per weight Ag-NPs(G)/PVA blend film showed highest values for ultimate strain 297.0%. Ag-NPs embedment into PA-PVA was resulted in strong and ductile film blend than pristine PA-PVA film due to an increase in hydrogen bonding. These good results of five weight per weight Ag-NPs(G)/PA-PVA product make it a potent candidate for wound dressing application in physically active body areas.
本研究旨在开发能够与银纳米颗粒(Ag-NPs)共混的聚乙烯醇(PVA)基薄膜,以提高其抗菌性能和机械强度,从而扩大其在伤口敷料和绷带领域的应用范围。本研究报告了通过化学和绿色方法(淀粉包覆)合成丙胺取代的PVA(PA-PVA)、Ag-NPs及其不同比例的共混薄膜。将淀粉包覆的Ag-NPs作为纳米填料加入PVA薄膜中,显著改善了所得纳米复合材料的上述性能。PA-PVA、淀粉包覆的Ag-NPs和共混薄膜的合成通过紫外/可见光谱、傅里叶变换红外光谱、核磁共振、X射线衍射和扫描电子显微镜分析得到了很好的证实。通过绿色合成和化学合成得到的Ag-NPs分别呈颗粒状,平均粒径为20 nm和40 nm。Ag-NPs成功地以高达5重量比混入PA-PVA薄膜中,超过此比例会观察到Ag-NPs的自聚集现象。抗菌试验表明,5重量比的Ag-NPs(G)封装在PA-PVA共混薄膜中具有良好的抗菌活性,即对[具体细菌1]的抑菌圈为13 mm,对[具体细菌2]的抑菌圈为11 mm。通过共混薄膜的拉伸应力-应变曲线,以杨氏模量衡量其物理强度。5重量比的Ag-NPs(G)/PA-PVA共混薄膜的最大拉伸强度为168.2 MPa,而3重量比的Ag-NPs(G)/PVA共混薄膜的极限应变最高值为297.0%。由于氢键增加,Ag-NPs嵌入PA-PVA中形成的薄膜共混物比原始PA-PVA薄膜更强且更具韧性。5重量比的Ag-NPs(G)/PA-PVA产品的这些良好结果使其成为在身体活动部位伤口敷料应用的有力候选材料。