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Polydopamine-based photonic crystal structures

机译:聚多巴胺基光子晶体结构

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Active photonic crystals (PC) or photonic crystal heterostructures have many applications such as chemical and biological sensors, active colour displays, structural colour printing and fluorescence enhancement. However, photonic crystal structures with the different functions mentioned above require different preparation methods, and some of them require sophisticated instruments for specific production processes. Thus, development of a simple way or a useful platform for conveniently fabricating specific photonic crystal structures with different functions is highly desirable and significant. Herein, by exploiting the self-polymerization of dopamine, we successfully introduced polydopamine (PDA) into silica opaline templates and produced PDA photonic crystal structures. Based on the utilization of the unique properties of PDA such as reactivity, reductive ability, powerful adhesive capability as well as carbonizable feature, PDA-based photonic crystal structures provide a very useful platform for further convenient fabrication of multifunctional photonic crystal structures with a variety of potential applications. Due to the virtually unlimited variety provided by the active secondary reactions of PDA, the post-modification of PDA-based photonic crystals can readily afford photonic crystal based chemical or biological sensors. The reductive as well as adhesive ability of PDA provides another tremendous opportunity to produce photonic crystal heterostructures with various metals, metal oxides, polymer or semiconductor nanoparticles. As a demonstration, PDA/Ag/PDA and PDA/Pt/PDA opaline structures were prepared by PDA-assisted metallization or adsorption, respectively, which could find promising application in fluorescence enhancement of organic dyes or chemical solvent sensors. More importantly, the carbonizable feature of PDA allows for efficiently producing carbon inverse opaline films as well as metal particle doped carbon inverse opaline films by carbonizing the corresponding PDA, PDA/Ag/PDA or PDA/Pt/PDA photonic structures, which may show various potential applications in catalysis and energy conversion.
机译:有源光子晶体(PC)或光子晶体异质结构具有许多应用,例如化学和生物传感器,有源彩色显示器,结构彩色印刷和荧光增强。然而,具有上述不同功能的光子晶体结构需要不同的制备方法,并且其中一些需要用于特定生产工艺的精密仪器。因此,非常需要并且重要的是开发一种简便的方法或有用的平台来方便地制造具有不同功能的特定光子晶体结构。在这里,通过利用多巴胺的自聚合,我们成功地将聚多巴胺(PDA)引入到二氧化硅透明模板中,并产生了PDA光子晶体结构。基于PDA独有的特性,例如反应性,还原能力,强大的粘合能力以及可碳化特性,基于PDA的光子晶体结构为进一步方便地制造具有多种不同结构的多功能光子晶体结构提供了非常有用的平台。潜在的应用。由于PDA的活性二级反应实际上提供了无限的多样性,因此,基于PDA的光子晶体的后修饰可以轻松提供基于光子晶体的化学或生物传感器。 PDA的还原性和粘合性为利用各种金属,金属氧化物,聚合物或半导体纳米粒子生产光子晶体异质结构提供了另一个巨大的机会。作为演示,分别通过PDA辅助金属化或吸附制备了PDA / Ag / PDA和PDA / Pt / PDA乳白色结构,这可能在有机染料或化学溶剂传感器的荧光增强中具有广阔的应用前景。更重要的是,PDA的可碳化特性可通过碳化相应的PDA,PDA / Ag / PDA或PDA / Pt / PDA光子结构,有效地生产碳反不透明膜以及掺杂金属颗粒的碳反不透明膜。在催化和能量转化中的潜在应用。

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