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Synthesis and characterization of amphiphilic triazole ligand and its complex for liquid crystals of phosphorescent temperature sensor materials

机译:两性三唑配体及其配合物在磷光温度传感器材料液晶中的合成与表征

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摘要

Phosphorescent materials have attracted much attention due to their promising applications in sensors, display, optical imaging and drug delivery. Extensive studies have been only reported on the syntheses of trinuclear gold(I) azolate complexes such as imidazolate, pyrazolate and carbeniete. On the other hand, liquid crystal materials with anisotropic properties have been developed based on supramolecular self-assembly of weak non-covalent interactions due to it precise control and easily tunable characteristic for high performance applications. Although single crystal of trinuclear gold(I) triazolate complex has been reported in a solid state with luminescence center at near infrared area (750 nm) at room temperature, no example of phosphorescent amphiphilic trinuclear gold(I) triazolate complex with liquid crystalline properties has been reported for potential applications in near infrared phosphorescent temperature sensor materials. Here we report the successful synthesis of a triazole ligand bearing amphiphilic side chains by reacting methyl gallate with amphiphilic alkyl bromide via Williamson ether substitution reaction (45% yield), followed by hydrolysis (81% yield), and reaction with 4-amino-1,2,4-triazole (23% yield). Complexation with gold salt in Schlenk tube gave an amphiphilic trinuclear gold(I) triazolate complex. The phosphorescent characteristics including the liquid crystalline properties of this metal complex will be discussed later.
机译:磷光材料因其在传感器,显示器,光学成像和药物输送中的应用前景广阔而备受关注。仅对三核偶氮金(I)配合物如咪唑,吡唑和碳甲酸酯的合成进行了广泛的研究。另一方面,由于其精确的控制和易于调谐的特性用于高性能应用,已经基于弱的非共价相互作用的超分子自组装开发了具有各向异性特性的液晶材料。尽管已经报道了在室温下三核金(I)三唑酸三核金(I)配合物呈固态,其发光中心位于近红外区(750 nm),但尚无具有液晶性质的磷光两亲三核金(I)三唑酸配合物的例子。据报道其在近红外磷光温度传感器材料中的潜在应用。在这里,我们报告了通过威廉姆森醚取代反应(45%的收率)使没食子酸甲酯与两亲的烷基溴反应,然后水解(81%的收率)并与4-amino-1反应,成功合成了带有两亲性侧链的三唑配体,2,4-三唑(23%产率)。在Schlenk管中与金盐络合得到两亲性三核三核金(I)三唑盐络合物。稍后将讨论包括该金属配合物的液晶性质的磷光特性。

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