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Development of Multimodal Optical System Guided by Optical Coherence Tomography

机译:光学相干层析成像技术指导的多峰光学系统的开发

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摘要

The goal of this dissertation is to develop multimodal light scattering techniques using optical coherence tomography (OCT) to improve clinical diagnosis. OCT is a non-invasive optical imaging technique that utilizes low coherence interferometry to detect reflected and scattered light from a sample to produce depth resolved images. OCT is an emerging technology for a wide range of biomedical applications, with its largest impact in the field of ophthalmology to assess retinal morphology and abnormalities. Due to its excellent axial resolution, OCT has been often jointly used with a variety of other optical techniques in multimodal platforms for enhanced characterization of biological tissues.;The first section discusses the development of a multimodal optical system that combines OCT and angle-resolved low coherence interferometry (a/LCI). Similar to OCT, a/LCI utilizes low coherence interferometry for depth gating, but instead of imaging, it measures the angular dependence of scattered light as a function of depth to retrieve depth-resolved nuclear morphology measurements. However, since a/LCI is not an imaging modality, it can produce ambiguous results when the measurements are not properly oriented to the tissue structure. Utilization of OCT can resolve this problem, by providing real time image guidance for a/LCI and ensuring proper sample orientation. Moreover, OCT enables the co-registration of light scattering measurements to specific histological layers, which significantly improves the effectiveness of nuclear morphology determination. Thus, a multimodal system that combines OCT and a/LCI can provide a unique analysis of tissue structure that cannot be assessed using a standalone modality. Using the combined modality, this research develops quantitative biomarkers from ex vivo tissue samples to discriminate disease states.;The second portion of the work describes the development of a low-cost, portable OCT system that could significantly increase ease of access, particularly targeted for low resource settings. Although OCT has been adopted as the gold standard for retinal imaging in ophthalmology, the high cost of the clinical system has restricted access to mostly large eye centers and laboratories. Cost reduction and portability have been of interest for numerous optical technologies. Providing a comprehensive low-cost OCT system will open the doors for a wide variety of potential opportunities of OCT guided diagnosis. This section discusses the design and the implementation of a low-cost system, as well as a demonstration of the imaging capabilities that could meet the required performance for retinal imaging in clinical and laboratory studies.;The last section discusses the performance of imaging fiber bundles for light delivery and collection in endoscopic a/LCI. The use of imaging bundle for coherent imaging application has been limited since coherent imaging relies on single mode illumination, which requires expensive scanning optics, to reject higher mode interference. This section investigates the application of more affordable fiber bundles to replace such costly systems. A number of commercial and custom fiber bundles that could be used for light delivery and collection for the endoscopic probe have been carefully characterized. This characterization will not only help with developing a novel probe design for a/LCI, but also provide valuable insights into the potential application of coherent bundles for general coherent imaging including OCT.
机译:本文的目的是开发使用光学相干断层扫描(OCT)的多峰光散射技术,以改善临床诊断。 OCT是一种非侵入式光学成像技术,利用低相干干涉测量技术来检测样品反射和散射的光,以产生深度分辨图像。 OCT是一种广泛用于生物医学应用的新兴技术,它在眼科领域评估视网膜形态和异常方面的影响最大。由于其出色的轴向分辨率,OCT经常与多模态平台中的其他多种光学技术结合使用,以增强对生物组织的表征。第一部分讨论了结合了OCT和低角度分辨力的多模态光学系统的开发。相干干涉法(a / LCI)。与OCT相似,a / LCI利用低相干干涉测量法进行深度选通,但是代替成像,它测量散射光的角度依赖性作为深度的函数,以获取深度分辨的核形态学测量值。但是,由于a / LCI不是成像方式,因此当测量未正确定向到组织结构时,它可能会产生模棱两可的结果。通过为a / LCI提供实时图像指导并确保正确的样本方向,OCT的使用可以解决此问题。此外,OCT可以将光散射测量结果共配准到特定的组织学层,从而显着提高了核形态测定的效率。因此,结合了OCT和a / LCI的多峰系统可以提供无法使用独立模态评估的组织结构的独特分析。本研究使用结合的方法从离体组织样本中开发定量生物标志物,以区分疾病状态。第二部分工作描述了低成本便携式OCT系统的开发,该系统可显着提高获取的便利性,尤其是针对资源设置低。尽管OCT已被用作眼科视网膜成像的金标准,但临床系统的高昂费用限制了大多数大型眼科中心和实验室的访问。降低成本和便携性已成为众多光学技术的关注点。提供全面的低成本OCT系统将为OCT指导诊断的各种潜在机会打开大门。本节讨论了低成本系统的设计和实现,并演示了可以满足临床和实验室研究中视网膜成像所需性能的成像功能。最后一部分讨论了成像纤维束的性能。用于内窥镜a / LCI中的光传输和收集。由于相干成像依赖于单模照明,这需要昂贵的扫描光学器件才能拒绝更高模的干扰,因此将成像束用于相干成像应用受到了限制。本节研究了使用更实惠的光纤束替代此类昂贵系统的应用。已经仔细表征了许多可用于内窥镜探头的光传输和收集的商业和定制光纤束。这种表征不仅有助于开发用于a / LCI的新颖探针设计,而且还可以为相干束在包括OCT在内的一般相干成像中的潜在应用提供有价值的见解。

著录项

  • 作者

    Kim, Sang Hoon.;

  • 作者单位

    Duke University.;

  • 授予单位 Duke University.;
  • 学科 Biomedical engineering.
  • 学位 Ph.D.
  • 年度 2018
  • 页码 177 p.
  • 总页数 177
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

  • 入库时间 2022-08-17 11:53:07

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