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Advanced packaging materials for optical applications: bridging the gap between nm-size structures and large-area panel processing

机译:光学应用的高级包装材料:弥合纳米尺寸结构和大面积面板加工之间的差距

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During the last two decades, nano-materials have been intensively investigated due to their wide range of properties, resulting in a variety of applications. In order to serve as advanced packaging material, from an industrial point of view emphasis has also to be on cost reduction either for the materials, the processes, or for both. Materials are searched for which enable processing and integration from a nm up to a cm scale. A particular class of low-cost nanoscale materials fulfilling this requirement are inorganic-organic hybrid polymers (ORMOCER~®s) which are synthesized by catalytically controlled hydrolysis/polycondensation reactions, resulting in storage-stable resins. Due to the variety of chemical and physical parameters, the material and processing properties which directly influence the resulting structure and thus the physical properties, can be varied over wide ranges. Upon synthesis, functional organic groups are introduced into the material which allows one to photochemically pattern the resins. The materials are capable to be patterned on a nm up to a cm scale, employing a variety of different micro- and nano-patterning methods such as, UV lithography, UV replication/lithography, laser-direct writing, or two-photon polymerization, in order to generate micro- and nano-optical components. While for most of the techniques the patterning has to be repeated several times in order to achieve multi-functional layers, the latter method allows one to directly write arbitrary 3D structures into the hybrid polymer material. The combination of chemically designed low-cost materials with tunable material parameters such as low optical absorption, tunable refractive index, good processibility, and high chemical, thermal and mechanical stability, is very attractive for (integrated) optical applications. Examples for application of the materials for microoptics as well as for optical back-planes generated by large-area processing will be given.
机译:在过去的二十年中,由于纳米材料的广泛特性,人们对其进行了广泛的研究,从而产生了各种各样的应用。为了用作高级包装材料,从工业角度来看,还必须重点降低材料,工艺或两者的成本。搜索材料,使其能够进行从纳米到厘米级的处理和集成。满足该要求的一类低成本纳米级材料是无机-有机杂化聚合物(ORMOCER®),它们是通过催化控制的水解/缩聚反应合成的,从而产生稳定的树脂。由于化学和物理参数的变化,直接影响所得结构并进而影响物理性能的材料和加工性能可以在很宽的范围内变化。合成后,将功能性有机基团引入材料中,从而使人们可以对树脂进行光化学图案化。可以使用各种不同的微米和纳米图案化方法(例如UV光刻,UV复制/光刻,激光直接写入或双光子聚合,为了产生微米和纳米光学组件。虽然对于大多数技术来说,图案化必须重复几次才能获得多功能层,但后一种方法允许人们直接将任意3D结构写入杂化聚合物材料中。化学设计的低成本材料与可调材料参数(例如低光吸收,可调折射率,良好的可加工性以及高化学,热和机械稳定性)的结合对于(集成)光学应用非常有吸引力。将给出应用微光学材料以及通过大面积处理产生的光学背板的材料的实例。

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