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Circular Dichroism Measurement of Single Metal Nanoparticles Using Photothermal Imaging

机译:使用光热成像单金属纳米粒子的圆形二色性测量

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Circular dichroism (CD) spectroscopy is a powerful optical technique for the study of chiral materials and molecules. It gives access to an enantioselective signal based on the differential absorption of right and left circularly polarized light, usually obtained through polarization analysis of the light transmitted through a sample of interest. CD is routinely used to determine the secondary structure of proteins and their conformational state. However, CD signals are weak, limiting the use of this powerful technique to ensembles of many molecules. Here, we experimentally realize the concept of photothermal circular dichroism, a technique that combines the enantioselective signal from circular dichroism with the high sensitivity of photothermal microscopy, achieving a superior signal-to-noise ratio to detect chiral nano-objects. As a proof of principle, we studied the chiral response of single plasmonic nanostructures with CD in the visible range, demonstrating a signal-to-noise ratio better than 40 with only 30 ms integration time for these nanostructures. The high signal-to-noise ratio allows us to quantify the CD signal for individual nanoparticles. We show that we can distinguish relative absorption differences for right circularly and left circularly polarized light as small as g(min) = 4 x 10(-3) for a 30 ms integration time with our current experimental settings. The enhanced sensitivity of our technique extends CD studies to individual nano-objects and opens CD spectroscopy to numbers of molecules much lower than those in conventional experiments.
机译:圆形二色性(CD)光谱是一种强大的光学技术,用于研究手性材料和分子。它可以基于右侧和左圆偏振光的差分吸收,通常通过通过感兴趣的样本传输的光的偏振分析而获得对映射信号。 CD经常用于确定蛋白质的二级结构及其构象状态。然而,CD信号较弱,限制了这种强大的技术对许多分子的合并。在这里,我们实验地实现了光热圆形二色性的概念,一种与光热显微镜的高敏感性相结合的循环二色性能的技术,实现了检测手性纳米物体的卓越信噪比。作为原理的证据,我们研究了在可见范围内用CD的单个等离子体纳米结构的手性反应,证明了这些纳米结构仅30毫秒整合时间的信噪比。高信噪比允许我们量化各个纳米颗粒的CD信号。我们表明我们可以将右圆形偏振光的相对吸收差异区分为小于G(min)= 4×10(-3)的圆形偏振光,其目前的实验设置为30毫秒的集成时间。我们技术的增强敏感性将CD研究扩展到单个纳米物体,并打开CD光谱到远低于常规实验中的分子数。

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