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Mechanochromic luminescent liquid crystals based on a bianthryl moiety

机译:基于联蒽基部分的机械变色发光液晶

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Smectic liquid crystals consisting of an aromatic moiety based on 10,10'-bis(phenylethynyl)-9,9'-bianthryl at the central part and one and two mesogenic moieties on each side connected through oxyethylene spacers have been prepared to develop stimuli-responsive materials. The compound having two mesogenic moieties on each side (i.e. four total) forms an ordered smectic phase. Mechanochromic luminescence is observed for the smectic liquid crystal. A sample of this molecule formed by thermal annealing shows green photoluminescence at room temperature. The photoluminescent color changes from green to blue-green with mechanical stimulation at room temperature. The change of the photoluminescent color by mechanical shearing is ascribed to the disturbance of the mt interactions between the adjacent molecules. Moreover, the original green photoluminescent color is recovered by heating followed by cooling to room temperature. The effects of the number, and thus volume of mesogenic moieties were also examined. Smaller mesogenic moieties lead to stronger ground state interactions between adjacent luminescent molecules and red-shifted emission. In contrast, the compound having three mesogenic moieties on each side shows no mechanochromic luminescence. The large mesogenic moieties disturb intermolecular interactions, resulting in no detectable change in the assembled structure of luminescent moieties upon mechanical stimulation. These results suggest that the present molecular design is useful for fabricating new stimuli-responsive materials with liquid-crystalline behavior.
机译:已经准备了由基于10,10'-双(苯基乙炔基)-9,9'-联蒽基的芳族部分和通过氧乙烯间隔基连接的每侧上的一个和两个介晶部分组成的近晶液晶,以产生刺激-响应材料。在每一侧具有两个介晶部分(即总共四个)的化合物形成有序近晶相。对于近晶型液晶观察到了机械致变色发光。通过热退火形成的该分子的样品在室温下显示绿色光致发光。在室温下,通过机械刺激,光致发光颜色从绿色变为蓝绿色。机械剪切引起的光致发光颜色的变化归因于相邻分子之间mt相互作用的干扰。此外,通过加热然后冷却至室温来恢复原始的绿色光致发光颜色。还检查了数量,以及由此引起的介晶部分的体积的影响。较小的介晶部分导致相邻的发光分子与红移发射之间更强的基态相互作用。相反,在每侧具有三个介晶部分的化合物没有显示出机械致变色发光。大的介晶部分干扰分子间的相互作用,导致在机械刺激下发光部分的组装结构没有可检测的变化。这些结果表明,本分子设计可用于制造具有液晶行为的新型刺激响应材料。

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