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首页> 外文期刊>Journal of Materials Research and Technology >Effect of sugar palm nanofibrillated cellulose concentrations on morphological, mechanical and physical properties of biodegradable films based on agro-waste sugar palm ( Arenga pinnata (Wurmb.) Merr) starch
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Effect of sugar palm nanofibrillated cellulose concentrations on morphological, mechanical and physical properties of biodegradable films based on agro-waste sugar palm ( Arenga pinnata (Wurmb.) Merr) starch

机译:糖棕纳米原纤化纤维素浓度对基于农业废糖棕( Arenga pinnata(Wurmb。)Merr )淀粉的可生物降解薄膜的形态,机械和物理性能的影响

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Sugar palm (Arenga pinnata) fibres and starches are considered as agro-industrial residue in the agricultural industry. This paper aims to investigate the effect of different concentrations (0–1.0wt%) of sugar palm nanofibrillated cellulose (SPNFCs) reinforced sugar palm starch (SPS) on morphological, mechanical and physical properties of the bionanocomposites film. The SPNFCs, having a diameter of 5.5±0.99nm and length of several micrometres, were prepared from sugar palm fibres via a high-pressure homogenisation process. FESEM investigation of casting solution displayed good miscibility between SPS and SPNFCs. The FTIR analysis revealed good compatibility between the SPS and SPNFCs, and there were existence of intermolecular hydrogen bonds between them. The SPS/sPNFCs with 1.0wt% had undergone an increment in both the tensile strength and Young’s modulus when compared with the SPS film, from 4.80MPa to 10.68MPa and 53.97MPa to 121.26MPa, respectively. The enhancement in water barrier resistance was led by reinforcing SPNFCs into the matrix, which resulted in bionanocomposites. The properties of bionanocomposites will be enhanced for short-life applications, such as recyclable container and plastic packaging through the incorporation of SPNFCs within the SPS bionanocomposites.
机译:palm榔(Arenga pinnata)纤维和淀粉在农业中被视为农业工业的残留物。本文旨在研究不同浓度(0–1.0wt%)的糖棕纳米原纤化纤维素(SPNFCs)增强的糖棕淀粉(SPS)对仿生复合膜的形态,力学和物理性能的影响。通过高压均质方法由糖棕纤维制备直径为5.5±0.99nm,长度为几微米的SPNFC。 FESEM对浇铸溶液的研究表明,SPS和SPNFC之间具有良好的混溶性。 FTIR分析表明SPS和SPNFC之间具有良好的相容性,并且它们之间存在分子间氢键。与SPS薄膜相比,具有1.0wt%的SPS / sPNFCs的拉伸强度和杨氏模量均有所增加,分别从4.80MPa增加到10.68MPa,从53.97MPa增加到121.26MPa。通过将SPNFCs增强到基质中,导致了阻水性能的增强,这导致了仿生纳米复合材料的产生。通过在SPS纳米复合材料中掺入SPNFC,短寿命应用(例如可循环使用的容器和塑料包装)中的纳米复合材料的性能将得到增强。

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