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Optimizing probe design for an implantable perfusion and oxygenation sensor

机译:优化可植入式充氧传感器的探头设计

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摘要

In an effort to develop an implantable optical perfusion and oxygenation sensor, based on multiwavelength reflectance pulse oximetry, we investigate the effect of source–detector separation and other source-detector characteristics to optimize the sensor’s signal to background ratio using Monte Carlo (MC) based simulations and in vitro phantom studies. Separations in the range 0.45 to 1.25 mm were found to be optimal in the case of a point source. The numerical aperture (NA) of the source had no effect on the collected signal while the widening of the source spatial profile caused a shift in the optimal source-detector separation. Specifically, for a 4.5 mm flat beam and a 2.4 mm × 2.5 mm photodetector, the optimal performance was found to be when the source and detector are adjacent to each other. These modeling results were confirmed by data collected from in vitro experiments on a liver phantom perfused with dye solutions mimicking the absorption properties of hemoglobin for different oxygenation states.
机译:为了开发基于多波长反射脉搏血氧饱和度的可植入式光学灌注和充氧传感器,我们研究了源-检测器分离和其他源-检测器特性的影响,以基于蒙特卡罗(MC)的方法优化了传感器的信噪比模拟和体外体模研究。在点光源的情况下,发现0.45至1.25 mm的间距是最佳的。源的数值孔径(NA)对收集的信号没有影响,而源空间分布的加宽导致了最佳源检测器分离的偏移。具体而言,对于4.5 mm的平光束和2.4 mm×2.5 mm的光电探测器,发现最佳性能是当光源和探测器彼此相邻时。这些建模结果通过从体外实验中收集的模仿染料溶液模拟血红蛋白在不同氧合作用状态的染料溶液的肝脏模型上的数据得到证实。

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