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Preparation of Degradable Sago Starch Film incorporated with Zinc Oxide (ZnO) Nanoparticles for Enhanced Chemical Barrier and Mechanical Properties

机译:掺入氧化锌(ZnO)纳米颗粒的可降解Sago淀粉膜的制备,用于增强化学屏障和机械性能

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The main objective of this study is to reinforce the mechanical strength and water resistance abilities of sago starch biopolymer by incorporating ZnO nanofillers. The biopolymer based nanocomposite films were cast utilizing different weight percentages of ZnO nanofillers (0, 1, 3 or 5 wt%) in sago starch matrix through solution casting technique. Uniform dispersing of ZnO nanofillers throughout the sago starch matrix was achieved by sonication and also to prevent the formation of ZnO nanoparticles aggregates. This was to further reinforce the chemical barrier properties of the film The results illustrated that with the increase of loading of ZnO nanoparticles from 0 to 5 wt%, the tensile strength and elastic modulus improved from 0.180 to 0.980 MPa and from 3.410 to 6.401 MPa respectively for the films, attributing to the high surface to volume ratios, the high mechanical strength of ZnO nanoparticles and the strong nanofiller-matrix interfacial adhesion. The elongation at break also enhanced owing to the slippage of ZnO nanofillers and the oriented sago starch polymer which activated the shear flow of the sago starch polymer. Sago starch nanocomposites with ZnO loadings varied from 0 to 5 wt% demonstrated decreased water vapour permeability from 4.992 x 10~(-10) g m~(-1) s~(-1) Pa~(-1) to 2.723 x 10~(-10) g m~(-1) s~(-1) Pa~(-1).
机译:本研究的主要目的是通过掺入ZnO纳米填充物来增强Sago淀粉生物聚合物的机械强度和耐水能力。通过溶液浇铸技术在Sago淀粉基质中使用不同重量百分比的基于生物聚合物的纳米复合材料薄膜通过溶液浇铸技术浇铸ZnO纳米氧化物(0,1,3或5wt%)。通过超声处理实现在整个Sago淀粉基质中的ZnO纳米填充物的均匀分散,并防止ZnO纳米颗粒聚集体的形成。这是为了进一步加强薄膜的化学屏障性质,结果表明,随着ZnO纳米颗粒的载荷的增加,抗拉强度和弹性模量分别从0.180增加到0.180至0.980MPa和3.410至6.401MPa对于薄膜,归因于高表面积的体积比,ZnO纳米颗粒的高机械强度和强纳米填充 - 基质界面粘附。由于ZnO纳米填充物的滑动和激活了Sago淀粉聚合物的剪切流动的定向Sago淀粉聚合物,突破的伸长率也增强。具有ZnO载荷的Sago淀粉纳米复合材料变化,0至5wt%的百分比显示出4.992×10〜(-10)gm〜(-1)S〜(-1)Pa〜(-1)至2.723 x 10〜(-1)至2.723 x 10〜的水蒸气渗透率下降(-10)GM〜(-1)S〜(-1)PA〜(-1)。

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