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首页> 外文期刊>IEEE journal of selected topics in quantum electronics >On-off laser delivery into a precise tissue area using smart tissue-activated fiber probes
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On-off laser delivery into a precise tissue area using smart tissue-activated fiber probes

机译:使用智能的组织激活光纤探头将开/关激光传送到精确的组织区域

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摘要

A novel and simple concept for on-off switching laser radiation delivery into a precise tissue area using tissue-activated optical fiber probes is demonstrated. The authors present the operating principle and general optical features of the fiber-optic-based delivery technique. The basic idea includes the use of a single delivery fiber with a specially shaped angled tip. Because of the frustrated-total-internal reflectance caused by the refractive-index change of the surrounding medium, the angled fiber tip acts as a smart tissue-activated probe. It provides a safe way for laser delivery that includes only two states of tissue illumination: 1) off-state (no tissue illumination), when the fiber tip is out of the tissue area and the laser emission is backreflected due to total-internal-reflection and 2) on-state (maximum tissue illumination), when the fiber tip is on the absorbing tissue area and becomes "transparent" because of the frustrated-total-internal reflectance. Here, optical properties of tissue-activated fiber probes used for precise laser delivery are investigated both experimentally and theoretically by analyzing the backreflectance signal power. Optical fibers working in the visible and mid-infrared spectral regions with various geometrical parameters are used and a spatial resolution of 2 Μm is achieved when the fiber tip is moved toward the absorption tissue surface.
机译:演示了使用组织激活的光纤探头将激光辐射传递到精确的组织区域中的一种新颖而简单的概念。作者介绍了基于光纤的传输技术的工作原理和一般的光学特性。基本思想包括使用带有特殊形状的倾斜尖端的单根输送纤维。由于周围介质的折射率变化导致内部总反射率降低,成角度的光纤尖端可作为智能的组织激活探针。它提供了一种安全的激光传输方式,仅包括两种状态的组织照射:1)断开状态(无组织照射),当光纤尖端不在组织区域内且激光发射由于内部总反射而被反射时,反射和2)开启状态(最大组织照度),当光纤尖端由于内部总反射率受阻而处于吸收组织区域并变为“透明”时。在这里,通过分析背反射信号功率,从实验和理论上研究了用于精确激光传输的组织激活光纤探针的光学特性。使用在可见光和中红外光谱区域中具有各种几何参数的光纤,并且当光纤尖端向吸收组织表面移动时,可获得2微米的空间分辨率。

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