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Assessing the Accuracy of Complex Refractive Index Retrievals from Single Aerosol Particle Cavity Ring-Down Spectroscopy

机译:从单个气溶胶粒子腔衰荡光谱评估复杂的折射率检索的准确性

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摘要

Cavity ring-down spectroscopy (CRDS) of single, optically manipulated aerosol particles affords quantitative retrieval of refractive indices for particles of fixed or evolving composition with high precision. Here, we quantify the accuracy with which refractive index determinations can be made by CRDS for single particles confined within the core of a Bessel laser beam and how that accuracy is degraded as the particle size is progressively reduced from the coarse mode ( 1 μm radius) to the accumulation mode ( 500 nm radius) regime. We apply generalised Lorenz-Mie theory to the intra-cavity standing wave to explore the effect of particle absorption on the distribution of extinction cross section determinations resulting from stochastic particle motion in the Bessel beam trap. The analysis provides an assessment of the accuracy with which the real, , and imaginary, κ, components of the refractive index can be determined for a single aerosol particle.
机译:单个光学操纵的气溶胶颗粒的腔衰荡光谱(CRDS)可对固定或不断变化的成分的颗粒进行高精度的折射率定量检索。在这里,我们量化了CRDS可以确定局限在Bessel激光束核心内的单个粒子的折射率的准确度,以及随着粒度从粗模式(半径> 1μm)逐渐减小,该精度如何降低)到累积模式(半径<500 nm)的状态。我们将广义的Lorenz-Mie理论应用于腔内驻波,以探索粒子吸收对由Bessel束阱中的随机粒子运动导致的消光截面确定分布的影响。该分析提供了对单个雾剂颗粒的折射率的实部和虚部κ分量可以确定的准确性的评估。

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