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Development of Extended-Depth Swept Source Optical Coherence Tomography for Applications in Ophthalmic Imaging of the Anterior and Posterior Eye.

机译:扩展深度扫描源光学相干断层扫描技术的开发,可用于前眼和后眼的眼科成像。

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摘要

Optical coherence tomography (OCT) is a non-invasive optical imaging modality that provides micron-scale resolution of tissue micro-structure over depth ranges of several millimeters. This imaging technique has had a profound effect on the field of ophthalmology, wherein it has become the standard of care for the diagnosis of many retinal pathologies. Applications of OCT in the anterior eye, as well as for imaging of coronary arteries and the gastro-intestinal tract, have also shown promise, but have not yet achieved widespread clinical use.;The usable imaging depth of OCT systems is most often limited by one of three factors: optical attenuation, inherent imaging range, or depth-of-focus. The first of these, optical attenuation, stems from the limitation that OCT only detects singly-scattered light. Thus, beyond a certain penetration depth into turbid media, essentially all of the incident light will have been multiply scattered, and can no longer be used for OCT imaging. For many applications (especially retinal imaging), optical attenuation is the most restrictive of the three imaging depth limitations. However, for some applications, especially anterior segment, cardiovascular (catheter-based) and GI (endoscopic) imaging, the usable imaging depth is often not limited by optical attenuation, but rather by the inherent imaging depth of the OCT systems. This inherent imaging depth, which is specific to only Fourier Domain OCT, arises due to two factors: sensitivity fall-off and the complex conjugate ambiguity. Finally, due to the trade-off between lateral resolution and axial depth-of-focus inherent in diffractive optical systems, additional depth limitations sometimes arises in either high lateral resolution or extended depth OCT imaging systems. The depth-of-focus limitation is most apparent in applications such as adaptive optics (AO-) OCT imaging of the retina, and extended depth imaging of the ocular anterior segment.;In this dissertation, techniques for extending the imaging range of OCT systems are developed. These techniques include the use of a high spectral purity swept source laser in a full-field OCT system, as well as the use of a peculiar phenomenon known as coherence revival to resolve the complex conjugate ambiguity in swept source OCT. In addition, a technique for extending the depth of focus of OCT systems by using a polarization-encoded, dual-focus sample arm is demonstrated. Along the way, other related advances are also presented, including the development of techniques to reduce crosstalk and speckle artifacts in full-field OCT, and the use of fast optical switches to increase the imaging speed of certain low-duty cycle swept source OCT systems. Finally, the clinical utility of these techniques is demonstrated by combining them to demonstrate high-speed, high resolution, extended-depth imaging of both the anterior and posterior eye simultaneously and in vivo.
机译:光学相干断层扫描(OCT)是一种非侵入性的光学成像方法,可在几毫米的深度范围内提供组织微观结构的微米级分辨率。这种成像技术对眼科领域产生了深远的影响,其中它已成为诊断许多视网膜病变的护理标准。 OCT在前眼的应用以及在冠状动脉和胃肠道成像中的应用也显示出了希望,但尚未实现广泛的临床应用。OCT系统的可用成像深度通常受到以下因素的限制:下列三个因素之一:光学衰减,固有成像范围或焦深。其中第一个是光学衰减,这是由于OCT仅检测到单散射光的限制所致。因此,除了进入混浊介质的一定深度之外,基本上所有入射光都将被多次散射,并且不再可以用于OCT成像。对于许多应用(尤其是视网膜成像),光学衰减是三个成像深度限制中最严格的限制。但是,对于某些应用程序,尤其是前节,心血管(基于导管)和GI(内窥镜)成像,可用的成像深度通常不受光学衰减的限制,而受到OCT系统固有的成像深度的限制。这种固有的成像深度(仅特定于傅里叶域OCT)是由两个因素引起的:灵敏度下降和复共轭模糊性。最后,由于横向分辨率和衍射光学系统固有的轴向焦深之间的权衡,在高横向分辨率或扩展深度的OCT成像系统中有时会出现其他深度限制。聚焦深度限制在诸如视网膜的自适应光学(AO-)OCT成像和眼前节的扩展深度成像等应用中最为明显。;本论文中,用于扩展OCT系统成像范围的技术被开发。这些技术包括在全场OCT系统中使用高光谱纯度的扫频源激光器,以及使用一种称为相干复兴的特殊现象来解决扫频源OCT中的复杂共轭歧义。此外,还展示了一种通过使用偏振编码的双焦点样本臂来扩展OCT系统的焦点深度的技术。在此过程中,还提出了其他相关的进展,包括减少全场OCT中的串扰和斑点伪像的技术发展,以及使用快速光开关来提高某些低占空比扫频源OCT系统的成像速度的技术。 。最后,通过组合这些技术来证明前眼和后眼在体内同时进行高速,高分辨率,扩展深度成像,证明了这些技术的临床实用性。

著录项

  • 作者

    Dhalla, Al-Hafeez Zahir.;

  • 作者单位

    Duke University.;

  • 授予单位 Duke University.;
  • 学科 Health Sciences Ophthalmology.;Physics Optics.;Engineering Biomedical.
  • 学位 Ph.D.
  • 年度 2012
  • 页码 263 p.
  • 总页数 263
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

  • 入库时间 2022-08-17 11:42:41

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