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首页> 外文期刊>Scientific reports. >Highly cooperative fluorescence switching of self-assembled squaraine dye at tunable threshold temperatures using thermosensitive nanovesicles for optical sensing and imaging
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Highly cooperative fluorescence switching of self-assembled squaraine dye at tunable threshold temperatures using thermosensitive nanovesicles for optical sensing and imaging

机译:使用热敏纳米粒子进行光学传感和成像的可调谐阈值温度在可调谐阈值温度下自组装阈值染料的高度合作荧光切换

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Thermosensitive fluorescent dyes can convert thermal signals into optical signals as a molecular nanoprobe. These nanoprobes are playing an increasingly important part in optical temperature sensing and imaging at the nano- and microscale. However, the ability of a fluorescent dye itself has sensitivity and accuracy limitations. Here we present a molecular strategy based on self-assembly to overcome such limitations. We found that thermosensitive nanovesicles composed of lipids and a unique fluorescent dye exhibit fluorescence switching characteristics at a threshold temperature. The switch is rapid and reversible and has a high signal to background ratio (60), and is also highly sensitive to temperature (10-22%/°C) around the threshold value. Furthermore, the threshold temperature at which fluorescence switching is induced, can be tuned according to the phase transition temperature of the lipid bilayer membrane forming the nanovesicles. Spectroscopic analysis indicated that the fluorescence switching is induced by the aggregation-caused quenching and disaggregation-induced emission of the fluorescent dye in a cooperative response to the thermotropic phase transition of the membrane. This mechanism presents a useful approach for chemical and material design to develop fluorescent nanomaterials with superior fluorescence sensitivity to thermal signals for optical temperature sensing and imaging at the nano- and microscales.
机译:热敏荧光染料可以将热信号转换为光信号作为分子纳米孔。这些纳米素在纳米和微尺寸的光学温度传感和成像中扮演越来越重要的部分。然而,荧光染料本身具有敏感性和精度限制的能力。在这里,我们提出了一种基于自组装来克服这些限制的分子策略。我们发现由脂质和独特的荧光染料组成的热敏纳米粒子在阈值温度下表现出荧光切换特性。开关快速且可逆,并且具有高信号与背景比(> 60),并且对阈值周围的温度(10-22%/°C)也非常敏感。此外,诱导荧光切换的阈值温度可以根据形成纳米粒子的脂质双层膜的相变温度来调节。光谱分析表明,荧光切换由聚集导致的淬火和分解诱导的荧光染料的发射诱导的荧光染料对膜的热致抗相转变的蒸发响应。该机制提出了一种用于化学和材料设计的有用方法,用于开发具有优异的荧光敏感性对纳米和微观的光学温度传感和成像的热信号的荧光纳米材料的荧光纳米材料。

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