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Determination of agar tissue phantoms depth profiles with pulsed photothermal radiometry

机译:脉冲光热辐射法测定琼脂组织体模深度分布

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Pulsed photothermal radiometry (PPTR) can be used for non-invasive depth profiling of skin vascular lesions (e.g., port wine stain birthmarks), aimed towards optimizing laser therapy on an individual patient basis. Optimal configuration of the experimental setup must be found and its performance characterized on samples with well defined structure, before introducing the technique into clinical practice. The aim of our study is to determine how sample structure and width of spectruml acquisition band affect the accuracy of measured depth profiles. We have constructed tissue phantoms composed of multiple layers of agar and of thin absorbing layers between the agar layers. Three phantoms had a single absorber layer at various depths between 100 and 500 μm, and one phantom had two absorber layers. In each sample we induced a non-homogeneous temperature profile with a 585 nm pulsed laser and acquired the resulting radiometric signal with a fast InSb infrared camera. We tested two configurations of the acquisition system, one using the customary 3-5 μm spectruml band and one with a custom 4.5 μm cut-on filter. The laser-induced temperature depth profiles were reconstructed from measured PPTR signals using a custom algorithm and compared with sample structure as determined by histology and optical coherent tomography (OCT). PPTR determined temperature profiles correlate well with sample structure in all samples. Determination of the absorbing layer depth shows good repeatability with spatial resolution decreasing with depth. Spectruml filtering improved the accuracy of reconstructed profiles for shallow absorption layers (100-200 μm). PPTR technique enables reliable determination of structure in tissue phantoms with thin absorbing layers. Narrowing of the spectruml acquisition band (to 4.5 - 5.3 μm) improves reconstruction of objects near the surface.
机译:脉冲光热辐射法(PPTR)可用于对皮肤血管病变(例如葡萄酒色斑胎记)进行非侵入式深度剖析,旨在针对每个患者优化激光治疗。在将该技术引入临床实践之前,必须找到实验装置的最佳配置,并在结构明确的样品上表征其性能。我们研究的目的是确定样品结构和光谱采集带的宽度如何影响所测深度剖面的准确性。我们构建了由多层琼脂和琼脂层之间的薄吸收层组成的组织模型。三个体模在100至500μm之间的不同深度处具有单个吸收层,而一个体模具有两个吸收体层。在每个样品中,我们使用585 nm脉冲激光诱导了非均匀的温度分布,并使用快速的InSb红外热像仪获取了所得的辐射信号。我们测试了采集系统的两种配置,一种使用常规的3-5μm光谱带,另一种使用定制的4.5μm截止滤波器。使用自定义算法从测得的PPTR信号重建激光诱导的温度深度剖面,并将其与通过组织学和光学相干断层扫描(OCT)确定的样品结构进行比较。 PPTR测定的温度曲线与所有样品中的样品结构密切相关。吸收层深度的确定显示出良好的可重复性,而空间分辨率随深度而降低。频谱滤波提高了浅吸收层(100-200μm)的重构轮廓的准确性。 PPTR技术可通过薄吸收层可靠地确定组织体模中的结构。光谱采集带的变窄(至4.5-5.3μm)可改善表面附近物体的重建。

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