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Spectrophotometric determination of turbid optical parameters without using an integrating sphere

机译:不使用积分球的分光光度法测定浊度光学参数

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摘要

Spectrophotometric quantification of turbidity by multiple optical parameters has wide-ranging applications in material analysis and life sciences. A robust system design needs to combine hardware for precise measurement of light signals with software to accurately model measurement configuration and rapidly solve a sequence of challenging inverse problems. We have developed and validated a design approach and performed system validation based on radiative transfer theory for determination of absorption coefficient, scattering coefficient, and anisotropy factor without using an integrating sphere. Accurate and rapid determination of parameters and spectra is achieved for microsphere suspension samples by combining photodiode-based measurement of four signals with the Monte Carlo simulation and perturbation-based inverse calculations. The three parameters of microsphere suspension samples have been determined from the measured signals as functions of wavelength from 400 to 800 nm and agree with calculated results based on the Mie theory. It has been shown that the inverse problems in the cases of microsphere suspension samples are well posed with convex cost functions to yield unique solutions, and it takes about 1 min to obtain the three parameters per wavelength. (C) 2016 Optical Society of America
机译:通过多个光学参数对浊度进行分光光度定量分析在材料分析和生命科学中具有广泛的应用。强大的系统设计需要将用于精确测量光信号的硬件与用于精确建模测量配置并快速解决一系列具有挑战性的逆问题的软件相结合。我们已经开发并验证了一种设计方法,并在不使用积分球的情况下,基于辐射传递理论对系统的吸收系数,散射系数和各向异性系数进行了系统验证。通过将基于光电二极管的四个信号测量与蒙特卡洛模拟和基于扰动的逆计算相结合,可以准确,快速地确定微球悬浮液样品的参数和光谱。已根据测量信号确定了微球悬浮液样品的三个参数,这些参数是波长从400到800 nm的函数,并与基于米氏理论的计算结果相符。结果表明,在微球悬浮液样品中的逆问题很好地提出了凸成本函数,以产生唯一的解,并且大约需要1分钟才能获得每个波长的三个参数。 (C)2016美国眼镜学会

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