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Polymer layered silicate nanocomposites: Structure, morphology, and properties.

机译:聚合物层状硅酸盐纳米复合材料:结构,形态和性能。

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Layered silicates are important fillers for improving various mechanical, flame retardant, and barrier properties of polymers, which can be attributed to their sheet-like morphology. Layered silicates can be modified with organic surfactants to render them compatible with polymer matrices. Organically modified silicates (organoclays) having large surface areas are very cost-efficient non-toxic nanofillers effective at very low loads and are readily available. Upon amalgamation of organoclays with polymer matrix nanocomposites, polymer chains can penetrate in between the silicate layers and result in an intercalated structure where the clay stack remains intact but the interlayer spacing is increased. When penetration becomes more severe, disintegration of clay stacks can occur, resulting in an exfoliated structure. It has often been observed that exfoliation is not complete down to the level of isolated silicate layers; rather, the large clay stacks are broken up into shorter stacks termed 'tactoids' together with a few individual silicate layers, resulting in a kind of mixed intercalated-exfoliated structure. Organoclay particles are mostly intercalated, having a preferred orientation with the clay gallery planes being preferentially parallel to the plane of the pressed film. Preferential orientation of organoclays affects the barrier properties of polymer membranes. Additional fillers like carbon black can induce a change in the orientation of organoclays. The effect of carbon black on the orientation of organoclays was elucidated and a relationship between orientation and permeability of air through such membranes was established.;We have also investigated the flammability properties of a series of polymer nanocomposites, containing various Transition Metal Ion (TMI) modified organoclays. The improved fire retardation in nanocomposites with TMI-modified organoclays can be attributed to enhanced carbonaceous char formation during combustion, i.e., charring promoted by the presence of catalytically active TMI. Polymer nanocomposite materials depend not only on the properties of individual components but also on their morphology and interfacial interactions. In polymer nanocomposites, the interfacial interactions are maximized due to the large surface area of the filler particles exposed to the polymer matrix, resulting in unique anisotropic properties. Thus, it will be of great importance to achieve exfoliation of the lamellar stacks prior to mixing with the polymer matrix, in the dry powder state or in a solution state. In layered silicates the lamellar stacks are held by electrostatic interactions between the basal charges and ions present within the basal spacing. Lamellar stacks of layered silicates can be exfoliated if the amount of energy gained by them is higher than the electrostatic energy required to hold the lamellar stacks together. Using 'Microwave radiation', exfoliation of organoclays was achieved. Various characterization techniques were used to evaluate structure, morphology and properties of fillers and polymer nanocomposites.
机译:层状硅酸盐是用于改善聚合物的各种机械,阻燃和阻隔性能的重要填料,这可以归因于其片状形态。层状硅酸盐可以用有机表面活性剂改性,使其与聚合物基体相容。具有大表面积的有机改性的硅酸盐(有机粘土)是非常经济高效的无毒纳米填料,在非常低的载荷下有效,并且容易获得。在有机粘土与聚合物基体纳米复合材料合并后,聚合物链可以渗透到硅酸盐层之间,并形成插层结构,其中粘土堆栈保持完整,但层间间距增加。当渗透变得更严重时,粘土堆会发生崩解,从而导致剥落的结构。经常观察到,直到分离出的硅酸盐层为止,剥离仍未完成。相反,将大的粘土叠层与一些单独的硅酸盐层一起分解成称为“触针”的较短叠层,从而形成一种混合的插层-剥离结构。有机粘土颗粒大部分是插层的,具有优选的取向,其中粘土通道平面优选平行于压膜的平面。有机粘土的优先取向会影响聚合物膜的阻隔性能。诸如炭黑之类的其他填料会引起有机粘土的取向发生变化。阐明了炭黑对有机粘土取向的影响,并建立了取向和空气透过这种膜的渗透性之间的关系。;我们还研究了一系列含有各种过渡金属离子(TMI)的聚合物纳米复合材料的可燃性。改性有机粘土。具有TMI改性的有机粘土的纳米复合材料中阻燃性的改善可归因于燃烧过程中碳质炭形成的增强,即由于催化活性TMI的存在而促进炭化。聚合物纳米复合材料不仅取决于单个组分的特性,还取决于它们的形态和界面相互作用。在聚合物纳米复合材料中,由于填料颗粒暴露于聚合物基体的表面积较大,界面相互作用得以最大化,从而导致独特的各向异性。因此,在与聚合物基质混合之前,以干粉状态或溶液状态实现层状堆叠的剥离将是非常重要的。在层状硅酸盐中,层状叠层通过基底电荷和存在于基底间距内的离子之间的静电相互作用而保持。如果层状硅酸盐的层状叠层获得的能量高于将层状叠层保持在一起所需的静电能,则可以剥落该叠层状硅酸盐。使用“微波辐射”,实现了有机粘土的剥离。各种表征技术用于评估填料和聚合物纳米复合材料的结构,形态和性能。

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