论文标题

内部灌输光声断层扫描通过分级散发纤维扩散器增强

Internal-Illumination Photoacoustic Tomography Enhanced by a Graded-scattering Fiber Diffuser

论文作者

Li, Mucong, Vu, Tri, Sankii, Georgy, Winship, Brenton, Boydston, Kohldon, Terry, Russell, Zhong, Pei, Yao, Junjie

论文摘要

当光线通过组织表面外部传递时,在生物组织中光声成像的渗透深度受到强大的光学衰减的限制。为了解决这个问题,我们先前使用自定义的径向发射光纤扩散器报道了内部灌输光声成像,但是,该光纤扩散器具有复杂的制造,高成本和不均匀的光发射。为了克服这些缺点,我们基于渐变散射方法开发了一种新型的低成本纤维扩散器,其中纤维扩散器的光散射随着光线的流动而逐渐增加。分级散射可以补偿光学衰减,并沿扩散器提供相对均匀的光发射。我们进行了蒙特卡洛数值模拟,以优化几个关键的设计参数,包括散射段的数量,散射各向异性因子,光纤的发散角以及周围介质的反射索引。这些优化的参数共同导致沿纤维扩散器均匀的光发射,并可以灵活地调整以适应不同的应用。我们制造并表征了由琼脂糖凝胶和内脂的原型纤维扩散器。配备了新的纤维扩散器,我们对离体组织幻像和体内猪模型进行了彻底的概念验证研究,以证明光声断层扫描的深度成像能力(〜10 cm所达到的左右)。我们认为,通过优化的纤维扩散器的内部光输送是图像大型动物或人类中深层目标(例如肾脏)成像的有效策略。

The penetration depth of photoacoustic imaging in biological tissues has been fundamentally limited by the strong optical attenuation when light is delivered externally through the tissue surface. To address this issue, we previously reported internal-illumination photoacoustic imaging using a customized radial-emission optical fiber diffuser, which, however, has complex fabrication, high cost, and non-uniform light emission. To overcome these shortcomings, we have developed a new type of low-cost fiber diffusers based on a graded-scattering method in which the optical scattering of the fiber diffuser is gradually increased as the light travels. The graded scattering can compensate for the optical attenuation and provide relatively uniform light emission along the diffuser. We performed Monte Carlo numerical simulations to optimize several key design parameters, including the number of scattering segments, scattering anisotropy factor, divergence angle of the optical fiber, and reflective index of the surrounding medium. These optimized parameters collectively result in uniform light emission along the fiber diffuser and can be flexibly adjusted to accommodate different applications. We fabricated and characterized the prototype fiber diffuser made of agarose gel and intralipid. Equipped with the new fiber diffuser, we performed thorough proof-of-concept studies on ex vivo tissue phantoms and an in vivo swine model to demonstrate the deep-imaging capability (~10 cm achieved ex vivo) of photoacoustic tomography. We believe that the internal light delivery via the optimized fiber diffuser is an effective strategy to image deep targets (e.g., kidney) in large animals or humans.

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