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激光在薄散射层中的传输。

Laser transport through thin scattering layers.

作者信息

Eze Reginald, Kumar Sunil

机构信息

Thermal Optics Laboratory, Department of Mechanical Engineering, Polytechnic Institute of New York University, Six Metrotech Center, Brooklyn, New York 11201, USA.

出版信息

Appl Opt. 2010 Jan 20;49(3):358-68. doi: 10.1364/AO.49.000358.

Abstract

Many modern applications of lasers involve understanding the transport of radiation through thin layers. The interactions of continuous wave and pulsed lasers with skin in dermatological use related to surgery and cosmetic procedures are examples of such. These highly scattering thin layers in skin are best modeled by the Monte Carlo method. However, most traditional Monte Carlo models may inaccurately account for the presence of thin layers. As an example, the very thin epidermis, with its highly absorbing melanin, is known to influence the laser penetration significantly. If the Monte Carlo model is implemented without special features, then the results of the simulation will show incorrect effects of thin layers because the path length of most photons would be significantly larger than the layer thickness. As a result, the computed photon travel path length would simply not feel the presence of the layer. In this paper, we present numerical and algorithmic features for computation of radiation transport through thin layers. It is noted that, while Monte Carlo without special features smears the radiative effect of the layers, the refined technique indicates that layers have a great impact on the absorption of energy, especially if the layer properties are distinctly different from those of the adjacent layers. The results have significant implications in the study of diagnostic and therapeutic applications of lasers in biomedicine and surgery.

摘要

激光的许多现代应用都涉及到理解辐射在薄层中的传输。连续波和脉冲激光与皮肤在皮肤病学手术和美容程序中的相互作用就是这类例子。皮肤中的这些高散射薄层最好用蒙特卡罗方法来建模。然而,大多数传统的蒙特卡罗模型可能无法准确考虑薄层的存在。例如,非常薄的表皮含有高度吸收性的黑色素,已知会显著影响激光的穿透。如果在没有特殊特性的情况下实现蒙特卡罗模型,那么模拟结果将显示薄层的影响不正确,因为大多数光子的路径长度将显著大于层厚度。结果,计算出的光子传播路径长度根本不会感受到该层的存在。在本文中,我们提出了用于计算辐射在薄层中传输的数值和算法特性。需要注意的是,虽然没有特殊特性的蒙特卡罗方法会模糊层的辐射效应,但改进后的技术表明,层对能量吸收有很大影响,特别是当层的特性与相邻层明显不同时。这些结果对激光在生物医学和手术中的诊断和治疗应用研究具有重要意义。

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