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首页> 外文期刊>Journal of Polymers and the Environment >Properties of Poly(Vinyl Alcohol)/Chitosan Nanocomposite Films Reinforced with Oil Palm Empty Fruit Bunch Amorphous Lignocellulose Nanofibers
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Properties of Poly(Vinyl Alcohol)/Chitosan Nanocomposite Films Reinforced with Oil Palm Empty Fruit Bunch Amorphous Lignocellulose Nanofibers

机译:油棕空果束无定形木质纤维素纳米纤维增强的聚乙烯醇/壳聚糖纳米复合薄膜的性能

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The objective of this study was to investigate the properties of poly(vinyl alcohol)/chitosan nanocomposite films reinforced with different concentration of amorphous LCNFs. The properties analyzed were morphological, physical, chemical, thermal, biological, and mechanical characteristics. Oil palm empty fruit bunch LCNFs obtained from multi-mechanical stages were more dominated by amorphous region than crystalline part. Varied film thickness, swelling degree, and transparency of PVA/chitosan nanocomposite films reinforced with amorphous part were produced. Aggregated LCNFs, which reinforced PVA/chitosan polymer blends, resulted in irregular, rough, and uneven external surfaces as well as protrusions. Based on XRD analysis, there were two or three imperative peaks that indicated the presence of crystalline states. The increase in LCNFs concentration above 0.5% to PVA/chitosan polymer blends led to the decrease in crystallinity index of the films. A noticeable alteration of FTIR spectra, which included wavenumber and intensity, was obviously observed along with the inclusion of amorphous LCNFs. That indicated that a good miscibility between amorphous LCNFs and PVA/chitosan polymer blend generated chemical interaction of those polymers during physical blending. Reinforcement of PVA/chitosan polymer blends with amorphous LCNFs influenced the changes of T-g (glass transition temperature), T-m (melting point temperature), and T-max (maximum degradation temperature). Three thermal phases of PVA/chitosan/LCNFs nanocomposite films were also observed, including absorbed moisture evaporation, PVA and chitosan polymer backbone structural degradation and LCNFs pyrolysis, and by-products degradation of these polymers. The addition of LCNFs 0.5% had the highest tensile strength and the addition of LCNFs above 0.5% decreased the strength. The incorporation of OPEFB LCNFs did not show anti-microbial and anti-fungal properties of the films. The addition of amorphous LCNFs 0.5% into PVA/chitosan polymer blends resulted in regular and smooth external surfaces, enhanced tensile strength, increased crystallinity index, and enhanced thermal stability of the films.
机译:这项研究的目的是研究不同浓度的非晶态LCNFs增强的聚乙烯醇/壳聚糖纳米复合膜的性能。分析的特性是形态,物理,化学,热,生物学和机械特性。从多机械阶段获得的油棕空果束LCNFs主要由非晶区而不是结晶区支配。制备了具有非晶部分的PVA /壳聚糖纳米复合膜的各种膜厚度,溶胀度和透明性。聚合的LCNF增强了PVA /壳聚糖聚合物的共混物,导致不规则,粗糙和不均匀的外表面以及突起。根据XRD分析,有两个或三个命令峰指示晶态的存在。与PVA /壳聚糖聚合物共混物相比,LCNFs浓度增加0.5%以上会导致薄膜的结晶度指数降低。 FTIR光谱的显着变化,包括波数和强度,以及无定形LCNFs也被观察到。这表明非晶态LCNF与PVA /壳聚糖聚合物共混物之间的良好混溶性在物理共混过程中产生了这些聚合物的化学相互作用。 PVA /壳聚糖聚合物共混物与无定形LCNF的增强影响T-g(玻璃化转变温度),T-m(熔点温度)和T-max(最大降解温度)的变化。还观察到PVA /壳聚糖/ LCNFs纳米复合膜的三个热相,包括吸收的水分蒸发,PVA和壳聚糖聚合物主链结构降解和LCNFs热解以及这些聚合物的副产物降解。添加0.5%的LCNF具有最高的拉伸强度,而添加0.5%以上的LCNF则降低了强度。掺入OPEFB LCNF并没有显示出薄膜的抗微生物和抗真菌特性。在PVA /壳聚糖聚合物共混物中添加0.5%的无定形LCNF,可以使表面规则而光滑,拉伸强度提高,结晶度指数提高,并且薄膜的热稳定性增强。

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