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SCIP: a new simultaneous vapor phase coating and infiltration process for tougher and UV-resistant polymer fibers

机译:SCIP:具有更强硬和抗紫外线纤维的新同时蒸汽相涂层和渗透过程

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摘要

The physical properties of polymers can be significantly altered by blending them with inorganic components. This can be done during the polymerization process, but also by post-processing of already shaped materials, for example through coating by atomic layer deposition (ALD) or hybridizing through vapor phase infiltration (VPI), both of which are beneficial in their own way. Here, a new processing strategy is presented, which allows distinct control of the coating and infiltration. The process is a hybrid VPI and ALD process, allowing separate control of infiltrated and coated components. This new simultaneous vapor phase coating and infiltration process (SCIP) enhances the degrees of freedom for optimizing the properties of polymers, as shown on the example of Kevlar 29 fibers. The SCIP treated fibers show an increase of 17% of their modulus of toughness (MOT) in comparison to native Kevlar, through the nanoscale coating with alumina. At the same time their intrinsic sensitivity to 24 hours UV-irradiation was completely suppressed through another infiltrated material, zinc oxide, which absorbs the UV irradiation in the subsurface area of the fibers.
机译:通过用无机组分混合它们可以显着改变聚合物的物理性质。这可以在聚合过程中完成,而且还可以通过已经成型材料的后处理,例如通过原子层沉积(ALD)涂覆或通过气相浸润(VPI)杂交,这两者都是有益的。这里,提出了一种新的处理策略,其允许对涂层和渗透进行不同的控制。该方法是混合VPI和ALD工艺,允许单独控制渗透和涂覆的组分。这种新的同时气相涂层和渗透过程(SCIP)增强了用于优化聚合物性质的自由度,如Kevlar 29纤维的实例所示。 Scip处理的纤维与天然Kevlar通过含有氧化铝的纳米碳涂层相比,增加了它们的韧性模量(MOT)的17%。同时,通过另一种渗透材料,在纤维的地下区域中吸收UV照射,完全抑制了其内在敏感性至24小时的24小时紫外线辐照。

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