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Computational chemistry modeling and design of photoswitchable alignment materials for optically addressable liquid crystal devices

机译:用于光学寻址液晶装置的光开关取向材料的计算化学建模和设计

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Photoalignment technology based on optically switchable "command surfaces" has been receiving increasing interest for liquid crystal optics and photonics device applications. Azobenzene compounds in the form of low-molar-mass, water-soluble salts deposited either directly on the substrate surface or after dispersion in a polymer binder have been almost exclusively employed for these applications, and ongoing research in the area follows a largely empirical materials design and development approach. Recent computational chemistry advances now afford unprecedented opportunities to develop predictive capabilities that will lead to new photoswitchable alignment layer materials with low switching energies, enhanced bistability, write/erase fatigue resistance, and high laser-damage thresholds. In the work described here, computational methods based on the density functional theory and time-dependent density functional theory were employed to study the impact of molecular structure on optical switching properties in photoswitchable methacrylate and acrylamide polymers functionalized with azobenzene and spiropyran pendants.
机译:基于光学可切换的“命令表面”的光对准技术已经越来越受到液晶光学和光子学设备应用的关注。直接沉积在基材表面或分散在聚合物粘合剂中后,低摩尔质量的水溶性盐形式的偶氮苯化合物几乎已专门用于这些应用,并且该领域的持续研究工作主要依靠经验材料设计和开发方法。现在,最新的计算化学进展为开发预测能力提供了前所未有的机会,这些预测能力将导致新的光开关取向层材料具有较低的开关能量,增强的双稳性,耐写入/擦除疲劳性以及较高的激光损伤阈值。在本文所述的工作中,采用了基于密度泛函理论和随时间变化的密度泛函理论的计算方法,研究了分子结构对用偶氮苯和螺吡喃侧链官能化的可光转换甲基丙烯酸酯和丙烯酰胺聚合物中光交换特性的影响。

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