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The Effect of Titanium Dioxide Surface Modification on the Dispersion Morphology and Mechanical Properties of Recycled PP/PET/TiO2 PBNANOs

机译:二氧化钛表面改性对再生PP / PET / TiO2 PBNANOs的分散性形态和力学性能的影响

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摘要

Titanium dioxide (TiO ) nanoparticles have recently appeared in PET waste because of the introduction of opaque PET bottles. We prepare polymer blend nanocomposites (PBNANOs) by adding hydrophilic (hphi), hydrophobic (hpho), and hydrophobically modified (hphoM) titanium dioxide (TiO ) nanoparticles to 80rPP/20rPET recycled blends. Contact angle measurements show that the degree of hydrophilicity of TiO decreases in the order hphi > hpho > hphoM. A reduction of rPET droplet size occurs with the addition of TiO nanoparticles. The hydrophilic/hydrophobic balance controls the nanoparticles location. Transmission electron microscopy (TEM_ shows that hphi TiO preferentially locates inside the PET droplets and hpho at both the interface and PP matrix. HphoM also locates within the PP matrix and at the interface, but large loadings (12%) can completely cover the surfaces of the droplets forming a physical barrier that avoids coalescence, leading to the formation of smaller droplets. A good correlation is found between the crystallization rate of PET (determined by DSC) and nanoparticles location, where hphi TiO induces the highest PET crystallization rate. PET lamellar morphology (revealed by TEM) is also dependent on particle location. The mechanical behavior improves in the elastic regime with TiO addition, but the plastic deformation of the material is limited and strongly depends on the type of TiO employed.
机译:由于引入了不透明的PET瓶,最近在PET废料中出现了二氧化钛(TiO)纳米颗粒。我们通过将亲水性(hphi),疏水性(hpho)和疏水性改性(hphoM)的二氧化钛(TiO)纳米粒子添加到80rPP / 20rPET回收的共混物中来制备聚合物共混物纳米复合材料(PBNANO)。接触角测量表明,TiO 2的亲水性程度以hphi> hpho> hphoM的顺序降低。通过添加TiO纳米颗粒,rPET液滴尺寸会减小。亲水/疏水平衡控制纳米颗粒的位置。透射电镜(TEM_显示hphi TiO优先位于PET小滴内部,hpho优先位于界面和PP基体上.HphoM也位于PP基体内和界面上,但较大的负载量(12%)可以完全覆盖液滴形成避免聚结的物理屏障,导致形成较小的液滴; PET的结晶速率(由DSC确定)与纳米颗粒位置之间具有良好的相关性,其中hphi TiO诱导PET的结晶速率最高。形态(由TEM揭示)也取决于粒子的位置,加入TiO2时,其力学性能在弹性状态下有所改善,但材料的塑性变形受到限制,并强烈取决于所用TiO2的类型。

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