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首页> 外文期刊>Annals of the New York Academy of Sciences >Nano- and Microparticles of Organic Fluorescent Dyes Self-organization and Optical Properties
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Nano- and Microparticles of Organic Fluorescent Dyes Self-organization and Optical Properties

机译:纳米和微米级有机荧光染料的自组织和光学性质

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Organic nanostructured materials are of increasing interest for applications in the fields of bio-analysis, photocatalysis, photonics, and organic light-emitting diodes. However, their preparation is still difficult to control and their optical properties are inadequately known. A solvent-exchange process called the "reprecipitation method" was used here to prepare nano- and microcrystals from fluorescent dyes belonging, for example, to the coumarin and nitrobenzoxadiazole (NBD) series. Typically, the dyes were dissolved in a hydrophilic organic solvent and then suddenly placed in an aqueous environment, where they spontaneously produce molecular assemblies. According to the self-association properties of the dyes and to the experimental conditions used, the nano-and microcrystals obtained exhibited different sizes and shapes, as observed by fluorescence and electron microscopy. In some cases, the crystal habit was controlled by adding some additives to the reprecipitation medium. The overall optical properties of the free-standing particles in suspension were generally quite close to those of the dissolved dyes. However, strong distortions of the absorption and emission spectra -were observed for crystals grown in the presence of ionic additives. Under the fluorescence microscope, individual microcrystals may show peculiar emission characteristics, displaying bright and dark zones, or behaving like tiny optical fibers.
机译:有机纳米结构材料在生物分析,光催化,光子学和有机发光二极管领域的应用越来越受到关注。然而,它们的制备仍然难以控制,并且它们的光学性质还不够充分。这里使用称为“再沉淀法”的溶剂交换方法,由属于例如香豆素和硝基苯并恶二唑(NBD)系列的荧光染料制备纳米晶体和微晶体。通常,将染料溶解在亲水性有机溶剂中,然后突然放置在水性环境中,在那里它们自发产生分子组装体。根据染料的自缔合性质和所使用的实验条件,如通过荧光和电子显微镜观察到的,所获得的纳米晶体和微晶呈现出不同的尺寸和形状。在某些情况下,通过向再沉淀介质中添加一些添加剂来控制晶体习性。悬浮液中独立颗粒的总体光学性能通常非常接近溶解染料的光学性能。然而,对于在离子添加剂存在下生长的晶体,观察到吸收和发射光谱的强烈扭曲。在荧光显微镜下,单个微晶可能显示出特殊的发射特性,显示出明暗区域,或者表现得像微小的光纤。

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