Infrared irradiation of skin for the development of non-invasive health monitoring technologies

Hisham Abdussamad Abbas, G. Triplett
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引用次数: 1

Abstract

Infrared radiation was employed to study the optical transmission properties of pigskin and the factors that influence transmission at room temperature. The skin samples from the forehead of piglets were irradiated using an infrared-pulsed source by varying the beam properties such as optical power, power density, duty cycle, as well as sample thickness. Because infrared radiation in select instances can penetrate through thick-fleshy skin more easily than visible radiation, temperature fluctuations observed within the skin samples stemming from exposure-dependent absorption revealed interesting transmission properties and the limits of optical exposure. Pigskin was selected for this study since its structure most closely resembles that of human skin. Furthermore, the pulsed beam technique compared to continuous operation offers more precise control of heat generation within the skin. Through this effort, the correlated pulsed-beam parameters that influence infrared transmission were identified and varied to minimize the internal absorption losses through the dermis layers. The two most significant parameters that reduce absorption losses were frequency and duty cycle of the pulsed beam. Using the Bouger-Beer-Lambert Law, the absorption coefficient from empirical data is approximated, while accepting that the absorption coefficient is neither uniform nor linear. Given that the optical source used in this study was single mode, the infrared spectra obtained from irradiated samples also reveal characteristics of the skin structure. Realization of appropriate sample conditions and exposure parameters that reduce light attenuation within the skin and sample degradation could give way to novel non-invasive measuring techniques for health monitoring purposes.
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红外照射皮肤为发展无创健康监测技术
采用红外辐射法研究了猪皮在室温下的光传输特性及影响光传输的因素。使用红外脉冲源照射仔猪额头皮肤样品,通过改变光束特性,如光功率、功率密度、占空比以及样品厚度。由于红外辐射在特定情况下比可见光辐射更容易穿透厚肉皮肤,因此在皮肤样品中观察到的由暴露依赖性吸收引起的温度波动揭示了有趣的传输特性和光学暴露的限制。之所以选择猪皮作为研究对象,是因为猪皮的结构与人类皮肤最为相似。此外,与连续操作相比,脉冲束技术可以更精确地控制皮肤内的热量产生。通过这项工作,确定了影响红外传输的相关脉冲光束参数,并对其进行了调整,以最大限度地减少通过真皮层的内部吸收损失。减少吸收损失的两个最重要的参数是脉冲光束的频率和占空比。利用布格-比尔-朗伯定律,在接受吸收系数既非均匀也非线性的情况下,对经验数据的吸收系数进行了近似。由于本研究使用的光源为单模,因此从辐照样品中获得的红外光谱也揭示了皮肤结构的特征。实现适当的样品条件和暴露参数,减少皮肤内的光衰减和样品降解,可以为用于健康监测目的的新型非侵入性测量技术让路。
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