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Organic/inorganic hybrid materials for solution-processed photonic applications

机译:用于溶液处理的光子应用的有机/无机杂化材料

摘要

Solution-processable high refractive index materials are of immense interest for the production of optoelectronic devices, offering the prospect of high throughput, low cost and large area fabrication. In this thesis the optical characterisation of a relatively new type of optical material: the organic/inorganic molecular hybrid is presented. This molecular hybrid uses amorphous titanium oxide hydrates to cross-link polyvinyl alcohol (PVA) and in doing so enables the production of highly transparent thin film coatings with inorganic loadings approaching 100%. The refractive index of the hybrid material is determined by probing Fabry-Perot oscillations in the transmittance spectra of thin films. This simultaneously demonstrates the high indices, low optical loss and excellent film quality possible for the hybrid. The refractive index is found to be tunable between 1.5 and 1.8 by adjusting the relative content of titanium. However, a simple thermal annealing process is shown to allow indices above 2, without compromising the transparency of the material. The index increase on thermal annealing is explained as the result of the large contraction that also occurs.ududThe hybrid material is then used to fabricate several planar photonic structures. The first is a distributed Bragg reflector, in which the hybrid is deposited sequentially with a commercially available low index fluorinated polymer. The resulting structures have a high reflectance band that is controlled simply by the thicknesses of the high and low index layers. The DBRs demonstrate not only the excellent control of refractive index for the hybrid but also the ability to control layer thickness on the nanometre scale using dip coating. Infrared DBRs that are highly transparent in the visible are also fabricated as a possible application of the hybrid material system for heat management of glass clad buildings. Anti-reflective coatings are also demonstrated that remove 87% of the reflectance from glass. This is achieved using a symmetrical bi-layer design, again dip cast from solution.ududFinally, all solution-processed optical microcavities are produced using the hybrid material. First, a simple defect is inserted into a DBR stack to induce a peak in transmittance inside the stop-band. This is then extended to include an emissive material: a perylene derivative, that is coupled to the cavity mode in order to alter its emission characteristics. This, to the best knowledge of the author, is the first demonstration of coupling in a solution-processed optical microcavity.
机译:可溶液加工的高折射率材料对于光电子器件的生产具有极大的兴趣,提供了高产量,低成本和大面积制造的前景。本文提出了一种相对新型的光学材料的光学表征:有机/无机分子杂化体。这种分子杂化体使用无定形的氧化钛水合物交联聚乙烯醇(PVA),从而能够生产无机负载率接近100%的高透明薄膜涂料。通过在薄膜的透射光谱中探测Fabry-Perot振荡来确定杂化​​材料的折射率。这同时证明了该混合材料可能具有的高折射率,低光学损耗和出色的薄膜质量。通过调节钛的相对含量,发现折射率在1.5至1.8之间可调。但是,显示了一种简单的热退火工艺,可以使折射率大于2,而不会影响材料的透明度。热退火时折射率的增加是由于也会发生大收缩而引起的。 ud ud然后将混合材料用于制造几个平面光子结构。第一种是分布式布拉格反射器,其中的杂化物先后与市售的低折射率氟化聚合物一起沉积。所得的结构具有高反射带,该反射带简单地由高折射率层和低折射率层的厚度控制。 DBR不仅展示了对混合材料的出色的折射率控制,而且展示了使用浸涂在纳米级上控制层厚度的能力。在可见光中高度透明的红外DBR也被制造出来,作为混合材料系统在玻璃覆层建筑热管理中的一种可能应用。还显示出抗反射涂层可从玻璃上去除87%的反射率。这是使用对称的双层设计实现的,再次从溶液中浸铸。 ud ud最后,所有溶液处理的光学微腔都是使用混合材料生产的。首先,将简单的缺陷插入DBR堆栈中,以在阻带内引起透射率峰值。然后将其扩展为包括一种发光材料:per衍生物,该衍生物耦合到腔模以改变其发射特性。据作者所知,这是在溶液处理的光学微腔中进行耦合的第一个演示。

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    Strang Andrew;

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