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Hydroxypropyl methylcellulose-TiO2 and gelatin-TiO2 nanocomposite films: Physicochemical and structural properties

机译:羟丙基甲基纤维素-TiO2和明胶-TiO2纳米复合膜:物理化学和结构性能

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Photocatalytic properties of titanium dioxide (TiO2) have been widely studied. However, its tendency to aggregation in biopolymer-based nanocomposites limits its application for food packaging and has been few studied. The aim of this work was to study the dispersion of TiO2 (0-2 wt%) incorporated in the hydroxypropyl methyl-cellulose (HPMC-TiO2 ) and gelatin (gelatin-TiO2 ) film forming solutions. Particle size and zeta potential of TiO2 nanoparticles were investigated. Nanocomposite films were characterized as to the thickness, moisture content, solubility, color, absorption to the light, relative opacity, morphology, chemical composition, crystallinity, thermal and mechanical properties and water vapor permeability (WVP). TiO2 nanoparticles showed better dispersion in acid medium than water. Moisture content, water solubility and WVP of the gelatin-TiO2 films were influenced by the incorporation of TiO2 , while HPMC-TiO2 films were not. The increase of relative opacity of the films as TiO2 was more attenuated for the gelatin-TiO2 films due to lower TiO2 aggregation in gelatin. Morphology, chemical composition, crystallinity and thermal properties of the films evidenced that TiO2 was better dispersed in both matrices at 1 wt%. It was also concluded that TiO2 aggregation generated more biphasic regions in HPMC than generated in gelatin, which caused a microstructural reorganization in the matrices. (C) 2019 Elsevier B.V. All rights reserved.
机译:已经广泛研究了二氧化钛(TiO2)的光催化性质。然而,其基于生物聚合物的纳米复合材料的聚集趋势限制了其用于食品包装的应用,并且很少研究。该工作的目的是研究掺入羟丙基甲基 - 纤维素(HPMC-TiO 2)和明胶(明胶-TiO2)成膜溶液中的TiO 2(0-2wt%)的分散体。研究了TiO2纳米粒子的粒度和ζ电位。纳米复合薄膜的特征在于厚度,水分含量,溶解度,颜色,吸收对光,相对不透明度,形态,化学成分,结晶度,热和机械性能和水蒸气渗透性(WVP)。 TiO2纳米颗粒在酸性介质中显示出比水更好的分散。通过掺入TiO 2的含水含量,水溶性和WVP的影响,而HPMC-TiO2薄膜没有。由于明胶下的TiO 2聚集,因此Glatin-TiO2薄膜更加衰减作为TiO 2的相对不透明度的增加。薄膜的形态学,化学成分,结晶度和热性能证明了TiO 2在两个基质中以1wt%的两种基质分散。还得出结论,TiO2聚集在HPMC中产生比明胶产生更多的双相区域,这导致基质中的微观结构重组。 (c)2019 Elsevier B.v.保留所有权利。

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