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荷电稳定晶态胶体阵列作为制备非密堆积倒易光子晶体的模板。

Charge stabilized crystalline colloidal arrays as templates for fabrication of non-close-packed inverted photonic crystals.

机构信息

Department of Chemistry, University of Pittsburgh, Pittsburgh, PA 15260, United States.

出版信息

J Colloid Interface Sci. 2010 Apr 15;344(2):298-307. doi: 10.1016/j.jcis.2010.01.021. Epub 2010 Jan 18.

Abstract

We developed a straightforward method to form non-close-packed highly ordered fcc direct and inverse opal silica photonic crystals. We utilize an electrostatically self assembled crystalline colloidal array (CCA) template formed by monodisperse, highly charged polystyrene particles. We then polymerize a hydrogel around the CCA (PCCA) and condense silica to form a highly ordered silica impregnated (siPCCA) photonic crystal. Heating at 450 degrees C removes the organic polymer leaving a silica inverse opal structure. By altering the colloidal particle concentration we independently control the particle spacing and the wall thickness of the inverse opal photonic crystals. This allows us to control the optical dielectric constant modulation in order to optimize the diffraction; the dielectric constant modulation is controlled independently of the photonic crystal periodicity. These fcc photonic crystals are better ordered than typical close-packed photonic crystals because their self assembly utilizes soft electrostatic repulsive potentials. We show that colloidal particle size and charge polydispersity has modest impact on ordering, in contrast to that for close-packed crystals.

摘要

我们开发了一种简单的方法来形成非密堆积的高度有序的面心立方直接和反蛋白石二氧化硅光子晶体。我们利用由单分散、高电荷的聚苯乙烯颗粒形成的静电自组装的结晶胶体阵列(CCA)模板。然后,我们在 CCA(PCCA)周围聚合水凝胶,并使二氧化硅凝结形成高度有序的二氧化硅浸渍(siPCCA)光子晶体。在 450°C 加热去除有机聚合物,留下二氧化硅反蛋白石结构。通过改变胶体粒子的浓度,我们可以独立地控制反蛋白石光子晶体的粒子间距和壁厚度。这允许我们控制光学介电常数调制以优化衍射;介电常数调制独立于光子晶体的周期性进行控制。这些面心立方光子晶体比典型的密堆积光子晶体更有序,因为它们的自组装利用了软静电排斥势。我们表明,胶体粒子大小和电荷多分散性对有序性的影响不大,而对密堆积晶体的影响较大。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/665a/2882866/f8dd233a0894/nihms181368f1.jpg

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