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Optical property measurements of turbid media in a small-volume cuvette with frequency-domain photon migration

机译:带有频域光子迁移的小体积比色皿中混浊介质的光学性质测量

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摘要

A frequency-domain photon migration (FDPM) technique is developed for quantitative measurement of the absorption and reduced scattering coefficients of highly turbid samples in a small-volume (0.45-ml) reflective cuvette. We present both an analytical model for the FDPM cuvette and its experimental verification, using calibrated phantoms and suspensions of living cells. FDPM model fits to experimental data demonstrate that the reduced scattering (μ_(s)~(′)) and absorption (μ_(a)) coefficients can be derived with accuracies of 5-10% and 10-15%, respectively. Changing the cuvette wall reflectivity alters the frequency-dependent behavior of photon density waves (PDWs). For highly reflective wall boundaries (R_(eff)≥90-95%), PDW confinement leads to substantial enhancement in both amplitude and phase compared with identical samples in infinite media. Results from experiments on microsphere suspensions are compared with predictions from Mie theory to assess the potential of this method to interpret scattering properties in terms of scatterer size and density. Optical property measurements of biological cell suspensions are reported, and the possibility of optically monitoring cell physiology in a carefully controlled environment is demonstrated.
机译:频域光子迁移(FDPM)技术被开发用于定量测量小体积(0.45 ml)反射比色皿中高度混浊样品的吸收系数和降低的散射系数。我们使用校准的体模和活细胞悬浮液,介绍了FDPM比色皿的分析模型及其实验验证。 FDPM模型拟合实验数据表明,可以分别得到5-10%和10-15%的降低的散射系数(μ_(s)〜('))和吸收系数(μ_(a))。更改比色皿壁的反射率会更改光子密度波(PDW)的频率相关行为。对于高反射壁边界(R_(eff)≥90-95%),与无限介质中的相同样本相比,PDW限制导致幅度和相位的显着增强。将微球悬浮液的实验结果与Mie理论的预测结果进行比较,以评估该方法在散射体尺寸和密度方面解释散射特性的潜力。报告了生物细胞悬液的光学性质测量,并证明了在精心控制的环境中光学监测细胞生理的可能性。

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