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Optimization of Light Transmission through an Excitation-scan Hyperspectral Mirror Array System

机译:通过励磁扫描超细镜阵列系统优化光传输

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Hyperspectral imaging has numerous applications in a range of fields for target detection. While its originalapplications were in remote sensing, new uses include analyzing food quality, agriculture and medicine,Hyperspectral imaging has shown utility in fluorescence microscopy for detecting signatures from manyfluorescent molecules, but acquisition speeds have been slow due to the need to acquire many spectralbands and the light losses associated with spectral filtering. Therefore, a novel confocal microscope, the 5-Dimensional Rapid Hyperspectral Imaging Platform (RHIP-5D) was designed and is undergoing testing toovercome acquisition speed and sensitivity limitations. The current design utilizes light-emitting diodes(LEDs) and a multifaceted mirror array to combine light sources into a liquid light guide. Initial testsdemonstrated feasibility and we are now working on determining the ideal location of the liquid light guide,LEDs, lenses and mirror array to optimize optical transmission. A computational model was constructedusing Monte Carlo optical ray tracing in TracePro software (Lambda Research Corp.). LED sources weresimulated by importing irradiance properties from the manufacturers’ specifications. Optical properties oflenses were modeled using lens files available from the manufacturer. Analysis of the model includesgeometry and parametric optimization, assessing lens power, mirror angles and location of opticalelements. Initial results show an increase of transmission is possible by up to 20%. Future work willinvolve evaluating the position of the liquid light guide as well as analyzing lens configurations to furtherincrease optical transmission.
机译:高光谱成像在一系列域进行了多种应用中的目标检测。虽然是原来的应用程序在遥感中,新用途包括分析食品质量,农业和医学,高光谱成像在荧光显微镜中显示了用于检测许多签名的效用由于需要获得许多光谱,荧光分子,但采集速度一直缓慢带和与光谱滤波相关的光损失。因此,一种新型共聚焦显微镜,5-设计尺寸快速高光谱成像平台(RAP-5D)设计并正在进行测试克服采集速度和灵敏度限制。目前的设计利用发光二极管(LED)和多方面的镜子阵列,用于将光源组合成液体光导。初步测试证明可行性,我们现在正在努力确定液体光导的理想位置,LED,镜头和镜子阵列优化光学传输。构建了计算模型在TRACEPRO软件(Lambda Research Corp.)中使用Monte Carlo光学曲线跟踪。 LED消息人士是通过从制造商的规格导入辐照度属性来模拟。光学性质镜头使用制造商提供的镜头文件进行建模。模型的分析包括几何和参数优化,评估镜头电源,镜子角度和光学位置元素。初始结果显示,传输的增加最多可达20%。未来的工作将是涉及评估液体光导的位置以及进一步的分析镜片配置增加光传输。

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