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Enhanced Hybridization and Nanopatterning via Heated Liquid-Phase Infiltration into Self-Assembled Block Copolymer Thin Films

机译:通过加热的液相浸润将杂交和纳米透射性增强到自组装嵌段共聚物薄膜中

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Organic-inorganic hybrids featuring tunable material properties can be readily generated by applying vapor- or liquid-phase infiltration (VPI or LPI) of inorganic materials into organic templates, with resulting properties controlled by type and quantity of infiltrated inorganics. While LPI offers more diverse choices of infiltratable elements, it tends to yield smaller infiltration amount than VPI, but the attempt to address the issue has been rarely reported. Here, we demonstrate a facile temperature-enhanced LPI method to control and drastically increase the quantity and kinetics of Pt infiltration into self-assembled polystyrene-block-poly(2-vinylpyridine) block copolymer (BCP) thin films. By applying LPI at mildly elevated temperatures (40-80 degrees C), we showcase controllable optical functionality of hybrid BCP films along with conductive three-dimensional (3D) inorganic nanostructures. Structural analysis reveals enhanced metal loading into the BCP matrix at higher LPI temperatures, suggesting multiple metal ion infiltration per monomer of P2VP. Combining temperature-enhanced LPI with hierarchical multilayer BCP self-assembly, we generate BCP-metal hybrid optical coatings featuring tunable antireflective properties as well as scalable conductive 3D Pt nanomesh structures. Enhanced material infiltration and control by temperature-enhanced LPI not only enables tunability of organic-inorganic hybrid nanostructures and properties but also expands the application of BCPs for generating uniquely functional inorganic nanostructures.
机译:通过将无机材料的蒸气或液相渗透(VPI或LPI)施加到有机模板中,可以容易地产生有机 - 无机杂交物,其通过渗透无机的类型和量控制的所得性能。虽然LPI提供了更多样化的可抵抗元件的选择,但它往往会产生比VPI更小的渗透量,但是很少报告解决问题的尝试。在这里,我们证明了一种容易温度增强的LPI方法来控制和大大增加PT渗透到自组装聚苯乙烯 - 嵌段 - 聚(2-乙烯基吡啶)嵌段共聚物(BCP)薄膜中的数量和动力学。通过在温和升高的温度(40-80℃)的施加LPI,我们展示混合BCP膜的可控光学功能以及导电三维(3D)无机纳米结构。结构分析显示在较高的LPI温度下增强的金属加载到BCP基质中,表明每单体的多种金属离子浸润P2VP。将温度增强LPI与等级多层BCP自组装相结合,我们产生具有可调谐抗反射性能的BCP - 金属混合光学涂层以及可伸缩的导电3D Pt Nanmesh结构。增强的材料渗透和通过温度增强的LPI控制不仅可以通过有机 - 无机杂交纳米结构和性能的可调节性,而且还扩展BCPS以产生唯一功能性无机纳米结构的应用。

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