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Single-particle optical scattering spectroscopy in white light supercontinuum optical tweezers

机译:白光超连续谱光镊中的单粒子光学散射光谱

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摘要

White light supercontinuum, which is generated by coupling short laser pulses into a nonlinear photonic crystal fiber, not only covers an extremely broad wavelength range (e.g., from visible to near infrared) but also has high spatial coherence. As a result, tightly focused supercontinuum can be used to trap a single particle and simultaneously to perform broad-band ultra-sensitive optical spectroscopy at a single particle level. In this paper we investigate the optical scattering spectroscopy of a single particle in white light supercontinuum optical tweezers. Lorenz-Mie theory and Fourier angular spectrum analysis are used to model the scattering of tightly focused supercontinuum by a uniform spherical scatterer. In addition, Born approximation method is applied to analyze scattering by non-spherical weak scatterers. Unlike conventional ensemble averaged spectroscopy, single particle spectroscopy has the unique capability to probe the properties of individual particles, which can lead to many important applications such as ultrasensitive sensing and nanoparticle characterization.
机译:通过将短激光脉冲耦合到非线性光子晶体光纤中而产生的白光超连续谱,不仅覆盖了非常宽的波长范围(例如,从可见光到近红外),而且具有很高的空间相干性。结果,紧密聚焦的超连续谱可用于捕获单个粒子,并同时在单个粒子级别执行宽带超灵敏光谱。在本文中,我们研究了白光超连续谱光学镊子中单个粒子的光学散射光谱。使用Lorenz-Mie理论和傅立叶角谱分析来模拟均匀球面散射体对紧密聚焦的超连续谱的散射。另外,采用伯恩(Born)近似方法来分析非球形弱散射体的散射。与传统的整体平均光谱法不同,单粒子光谱法具有探测单个粒子特性的独特能力,这可以导致许多重要的应用,例如超灵敏感测和纳米粒子表征。

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