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A novel non-imaging optics based Raman spectroscopy device for transdermal blood analyte measurement

机译:一种基于非成像光学的新型拉曼光谱仪,用于经皮血液分析物的测量

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Due to its high chemical specificity, Raman spectroscopy has been considered to be a promising technique for non-invasive disease diagnosis. However, during Raman excitation, less than one out of a million photons undergo spontaneous Raman scattering and such weakness in Raman scattered light often require highly efficient collection of Raman scattered light for the analysis of biological tissues. We present a novel non-imaging optics based portable Raman spectroscopy instrument designed for enhanced light collection. While the instrument was demonstrated on transdermal blood glucose measurement, it can also be used for detection of other clinically relevant blood analytes such as creatinine, urea and cholesterol, as well as other tissue diagnosis applications. For enhanced light collection, a non-imaging optical element called compound hyperbolic concentrator (CHC) converts the wide angular range of scatteredphotons (numerical aperture (NA) of 1.0) from the tissue into a limited range of angles accommodated by the acceptance angles of the collection system (e.g., an optical fiber with NA of 0.22). A CHC enables collimation of scattered light directions to within extremely narrow range of angles while also maintaining practical physical dimensions. Such a design allows for the development of a very efficient and compact spectroscopy system for analyzing highly scattering biological tissues. Using the CHC-based portable Raman instrument in a clinical research setting, we demonstrate successful transdermal blood glucose predictions in human subjects undergoing oral glucose tolerance tests.
机译:由于其高度的化学特异性,拉曼光谱被认为是一种用于非侵入性疾病诊断的有前途的技术。但是,在拉曼激发过程中,不到一百万分之一的光子会自发进行拉曼散射,这种拉曼散射光的弱点通常需要高效收集拉曼散射光以用于生物组织分析。我们提出了一种新颖的基于非成像光学的便携式拉曼光谱仪,旨在增强光的收集。虽然该仪器已通过透皮血糖测量证明,但它也可用于检测其他临床相关的血液分析物,例如肌酐,尿素和胆固醇,以及其他组织诊断应用。为了增强光的收集,一种称为复合双曲线聚光器(CHC)的非成像光学元件将来自组织的散射光子的宽角度范围(数值孔径(NA)为1.0)转换为由光的接受角所适应的有限角度范围。收集系统(例如,NA为0.22的光纤)。 CHC可以将散射光的方向准直到极窄的角度范围内,同时还能保持实际的物理尺寸。这种设计允许开发用于分析高度散射的生物组织的非常有效且紧凑的光谱系统。在临床研究中使用基于CHC的便携式拉曼仪器,我们在经历口服葡萄糖耐量测试的人类受试者中证明了成功的透皮血糖预测。

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