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用于生物传感应用的短波长红外光学波长的蒙特卡罗特征化。

Monte Carlo Characterization of Short-Wave Infrared Optical Wavelengths for Biosensing Applications.

出版信息

Annu Int Conf IEEE Eng Med Biol Soc. 2021 Nov;2021:4285-4288. doi: 10.1109/EMBC46164.2021.9630061.

Abstract

Short-wave infrared (SWIR) spectroscopy has shown great promise in probing the composition of biological tissues. Currently there exists an enormous drive amongst researchers to design and develop SWIR-based optical sensors that can predict the concentration of various biomarkers non-invasively. However, there is limited knowledge regarding the interaction of SWIR light with vascular tissue, especially in terms of parameters like the optimal source-detector separation, light penetration depth, optical pathlength, etc., all of which are essential components in designing optical sensors. With the aim to determine these parameters, Monte Carlo simulations were carried out to examine the interaction of SWIR light with vascular skin. SWIR photons were found to penetrated only 1.3 mm into the hypodermal fat layer. The highest optical pathlength and penetration depths were seen at 1mm source-detector separation, and the lowest being 0.7mm. Although the optical pathlength varied significantly with increasing source-detector separation at SWIR wavelengths, penetration depth remained constant. This may explain why collecting optical spectra from depth of tissue at SWIR wavelengths is more challenging than collecting optical spectra from near-infrared wavelengths, where both the optical pathlength and penetration depth change rapidly with source-detector separation.

摘要

短波近红外(SWIR)光谱在探测生物组织成分方面显示出巨大的潜力。目前,研究人员正致力于设计和开发基于 SWIR 的光学传感器,以无创方式预测各种生物标志物的浓度。然而,对于 SWIR 光与血管组织的相互作用,人们的了解有限,特别是在最佳光源-探测器间距、光穿透深度、光程长度等参数方面,这些都是设计光学传感器的重要组成部分。为了确定这些参数,进行了蒙特卡罗模拟,以研究 SWIR 光与血管皮肤的相互作用。SWIR 光子仅穿透真皮脂肪层 1.3 毫米。在源探测器分离 1 毫米时,光学路径长度和穿透深度最大,分别为 0.7 毫米。尽管在 SWIR 波长下,随着源探测器分离的增加,光学路径长度显著变化,但穿透深度保持不变。这可能解释了为什么在 SWIR 波长下从组织深处采集光学光谱比从近红外波长采集光学光谱更具挑战性,因为在近红外波长下,光学路径长度和穿透深度随源探测器分离迅速变化。

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