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Photoacoustic and thermoacoustic tomography: System development for biomedical applications.

机译:光声和热声层析成像:生物医学应用系统开发。

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摘要

Photoacoustic tomography (PAT), as well as thermoacoustic tomography (TAT), utilize electromagnetic radiation in its visible, near infrared, microwave, and radiofrequency forms, respectively, to induce acoustic waves in biological tissues for imaging purposes. Combining the advantages of both the high image contrast that results from electromagnetic absorption and the high resolution of ultrasound imaging, these new imaging modalities could be the next successful imaging techniques in biomedical applications. Basic research on PAT and TAT, and the relevant physics, is presented in Chapter I. In Chapter II, we investigate the imaging mechanisms of TAT in terms of signal generation, propagation and detection. We present a theoretical analysis as well as simulations of such imaging characteristics as contrast and resolution, accompanied by experimental results from phantom and tissue samples. In Chapter III, we discuss the further application of TAT to the imaging of biological tissues. The microwave absorption difference in normal and cancerous breast tissues, as well as its influence on thermoacoustic wave generation and the resulting transducer response, is investigated over a wide range of electromagnetic frequencies and depths of tumor locations. In Chapter IV, we describe the mechanism of PAT and the algorithm used for image reconstruction. Because of the broad bandwidth of the laser-induced ultrasonic waves and the limited bandwidth of the single transducer, multiple ultrasonic transducers, each with a different central frequency, are employed for simultaneous detection. Chapter V further demonstrates PAT's ability to image vascular structures in biological tissue based on blood's strong light absorption capability. The photoacoustic images of rat brain tumors in this study clearly reveal the angiogenesis that is associated with tumors. In Chapter VI, we report on further developing PAT to image deeply embedded optical heterogeneity in biological tissues. The improved imaging ability is attributed to better penetration by NIR light, the use of the optical contrast agent ICG (indocyanine green) and a new detection scheme of a circular scanning configuration. Deep penetrating PAT, which is based on a tissue's intrinsic contrast using laser light of 532 nm green light and 1.06 mum near infrared light, is also presented.
机译:光声层析成像(PAT)和热声层析成像(TAT)分别利用电磁辐射的可见,近红外,微波和射频形式,在生物组织中感应出声波以进行成像。结合电磁吸收带来的高图像对比度和超声成像的高分辨率,这些新的成像方式可以成为生物医学应用中下一个成功的成像技术。第一章介绍了PAT和TAT的基础研究以及相关的物理学。第二章我们从信号的产生,传播和检测方面研究了TAT的成像机制。我们提出了理论分析以及诸如对比度和分辨率等成像特性的模拟,同时还提供了幻影和组织样本的实验结果。在第三章中,我们讨论了TAT在生物组织成像中的进一步应用。在广泛的电磁频率和肿瘤位置深度范围内研究了正常和癌性乳腺组织中的微波吸收差异,及其对热声波产生和所产生的换能器响应的影响。在第四章中,我们描述了PAT的机制以及用于图像重建的算法。由于激光感应的超声波的带宽较大,并且单个换能器的带宽有限,因此采用了多个超声换能器(每个均具有不同的中心频率)进行同时检测。第五章进一步证明了PAT具有强大的血液吸收能力,可以对生物组织中的血管结构进行成像。在这项研究中,大鼠脑部肿瘤的光声图像清楚地揭示了与肿瘤相关的血管生成。在第六章中,我们报告了进一步开发PAT来成像生物组织中深层嵌入的光学异质性的报道。成像能力的提高归因于近红外光的更好穿透,光学对比剂ICG(吲哚菁绿)的使用以及圆形扫描配置的新检测方案。还介绍了一种深层穿透的PAT,它基于组织的固有对比度,使用532 nm绿光和1.06 mm的近红外激光。

著录项

  • 作者

    Ku, Geng.;

  • 作者单位

    Texas A&M University.;

  • 授予单位 Texas A&M University.;
  • 学科 Engineering Biomedical.;Engineering Electronics and Electrical.;Physics Optics.
  • 学位 Ph.D.
  • 年度 2004
  • 页码 124 p.
  • 总页数 124
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 生物医学工程;光学;无线电电子学、电信技术;
  • 关键词

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