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Optical nanofabrication of photopolymer based photonic bandgap structures: Materials and applications.

机译:基于光聚合物的光子带隙结构的光学纳米加工:材料和应用。

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The development of functional 1D and 2D polymeric photonic bandgap (PBG) structures is presented. This work focused on the holographic writing of transmission and reflection gratings consisting of (i) active structures where the optical properties can be modified externally and (ii) passive structures where the optical properties can be modified by infiltration into the structure.; Specifically, holographic written polymer dispersed liquid crystal (H-PDLC) materials served as the initial system of interest in this dissertation. The 1D photonic bandgap structures (either transmission or reflection gratings) fabricated from these materials could have the optical properties modified (switched) electrically, thermally, or optically. This system provided significant variability and the choice of the constituent materials was essential for the application of interest. In this dissertation, we demonstrated different morphology and electro-optical switching behavior using two different LC (E7, TL202) in H-PDLC system. This dissertation presents also two photonic applications of these gratings: (a) a H-PDLC reflection grating film was employed as an angle-dependent and narrow spectral-band feedback control element for two-photon pumped lasing in a dye solution with an overall lasing efficiency measured to be 10%; and (b) an optically pumped and electrically switched distributed-feedback (DFB) laser consisting of a Pyrromethene 580 lasing dye-doped H-PDLC transmission grating structure.; In addition to the development of active structures, this dissertation presents first demonstration of highly reflective wide-bandwidth Bragg reflectors using a photopolymer/LC/non-reactive solvent system, similar to the initial system used for active structures. The key to this fabrication method that distinguishes it from a traditional H-PDLC system is the use of a non-reactive solvent to dissolve the photoinitiator and coinitiator in the acrylate monomer/liquid crystal (LC) mixture. The addition of the non-reactive solvent results in the creation of controllable periodic voids inside the thin film. Peak reflectivity as high as 80% and a broad reflection bandwidth of 80 nm were observed in the reflection gratings. Moreover, this dissertation presents the maturation of this process whereby the use of the liquid crystals could be eliminated. Specifically, a photopolymer/formamide system is demonstrated in which the high polarity of formamide (hydrophilic) generates a micro-emulsion in the monomer (hydrophobic). The use of the resulting periodic porous polymer structures for optical detection of organic solvent vapors and for fabrication of muiti-wavelength reflectors is presented.; Finally this dissertation presents some initial future directions in the optimization of these structures and applications that can be pursued using these structures.
机译:介绍了功能性1D和2D聚合物光子带隙(PBG)结构的发展。这项工作集中在透射和反射光栅的全息写法上,该透射和反射光栅由(i)可以在外部改变光学特性的有源结构和(ii)可以通过渗入结构而改变光学特性的无源结构组成;具体而言,全息书面聚合物分散液晶(H-PDLC)材料是本论文关注的初始系统。由这些材料制成的一维光子带隙结构(透射或反射光栅)可以通过电,热或光学方式修改(转换)光学特性。该系统提供了很大的可变性,组成材料的选择对于感兴趣的应用至关重要。在本文中,我们在H-PDLC系统中使用两个不同的LC(E7,TL202)展示了不同的形态和电光切换行为。本文还介绍了这些光栅的两个光子应用:(a)H-PDLC反射光栅膜被用作与角度有关的窄光谱带反馈控制元件,用于染料溶液中的双光子泵浦激光和整体激光。效率测得为10%; (b)光泵浦和电开关的分布式反馈(DFB)激光器,该激光器由吡咯甲二烯580激光掺杂的H-PDLC透射光栅结构组成。除了开发有源结构,本文还首次展示了使用光敏聚合物/ LC /非反应性溶剂系统的高反射宽带布拉格反射器,类似于用于有源结构的初始系统。该制造方法有别于传统H-PDLC系统的关键是使用非反应性溶剂将光引发剂和共引发剂溶解在丙烯酸酯单体/液晶(LC)混合物中。非反应性溶剂的加入导致在薄膜内部产生可控的周期性空隙。在反射光栅中观察到高达80%的峰值反射率和80 nm的宽反射带宽。而且,本论文提出了该方法的成熟,由此可以消除液晶的使用。具体地,证明了光聚合物/甲酰胺体系,其中甲酰胺的高极性(亲水性)在单体中形成微乳液(疏水性)。提出了所得的周期性多孔聚合物结构用于有机溶剂蒸气的光学检测和用于制造多波长反射器的用途。最后,本文提出了这些结构和应用的优化方面的一些初步的未来方向,这些方向和应用可以通过这些结构来追求。

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