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Fluorinated Azobenzenes for Shape-Persistent Liquid Crystal Polymer Networks

机译:用于形状保持性液晶聚合物网络的氟化偶氮苯

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摘要

Liquid crystal polymer networks respond with an anisotropic deformation to a range of external stimuli. When doped with molecular photoswitches, these materials undergo complex shape modifications under illumination. As the deformations are reversed when irradiation stops, applications where the activated shape is required to have thermal stability have been precluded. Previous attempts to incorporate molecular switches into thermally stable photoisomers were unsuccessful at photogenerating macroscopic shapes that are retained over time. Herein, we show that to preserve photo-activated molecular deformation on the macroscopic scale, it is important not only to engineer the thermal stability of the photoswitch but also to adjust the cross-linking density in the polymer network and to optimize the molecular orientations in the material. Our strategy resulted in materials containing fluorinated azobenzenes that retain their photochemical shape for more than eight days, which constitutes the first demonstration of long-lived photomechanical deformation in liquid-crystal polymer networks.
机译:液晶聚合物网络以各向异性变形响应一系列外部刺激。当掺有分子光电开关时,这些材料在光照下会经历复杂的形状修改。由于当停止照射时变形会逆转,因此已排除了需要激活形状具有热稳定性的应用。先前将分子开关结合到热稳定的光异构体中的尝试在光生宏观形状上是不成功的,该形状随着时间的推移而得以保留。在这里,我们表明,要在宏观尺度上保持光激活的分子变形,不仅重要的是设计光开关的热稳定性,而且重要的是调节聚合物网络中的交联密度,并优化聚合物中的分子取向。该材料。我们的策略导致含有氟化偶氮苯的材料保持其光化学形状超过八天,这是液晶聚合物网络中长寿命光机械变形的首次证明。

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