论文标题

反射模式的声学大量门控在散射培养基中的深度光学成像

Acousto-optic volumetric gating for reflection-mode deep optical imaging within a scattering medium

论文作者

Ko, Hakseok, Kim, Junghoon, Hong, Jin-Hee, Cheon, Junyeob, Lee, Seungwoo, Jang, Mooseok, Choi, Wonshik

论文摘要

深部组织光学显微镜的成像深度受门控操作的性能控制,该操作抑制了造成弹道波的多散射波。尽管事实证明,基于共焦,时间分辨/相干门控和极化选择检测的各种门控操作已被证明是有效的,但每个检测都有其自身的限制。某些类型的乘波可以绕过门控。在这里,我们提出了一种体积门控的方法,该方法将超声焦点引入了共焦反射成像,以抑制超声焦距外部传播的多重散射波。体积门轴向轴向拒绝比物体平面较浅的乘散射波传播到深度,同时抑制了更深的穿透性部分,该部分在超声焦点的横向范围外行驶的较深的穿透性部分30 $ {\ times} $ 90 $ 90 $ 90 $μmmm^2 $。这些沿轴向和横向方向的关节门控动作使多散射波减少了1/1000或更小的倍数,从而将成像深度扩展到散射的12.1倍,同时保持衍射有限分辨率为1.5 $μ$ m。我们证明了小鼠结肠和小肠的内部组织成像的成像深度和对比度增加。我们进一步开发了理论和实验框架,以表征散射介质内光轨迹的轴向分布。体积门控将是深度组织成像方式的重要补充,也是研究散射介质中波传播的有用工具。

The imaging depth of deep-tissue optical microscopy is governed by the performance of the gating operation that suppresses the multiply scattered waves obscuring the ballistic waves. Although various gating operations based on confocal, time-resolved/coherence-gated, and polarization-selective detections have proven to be effective, each has its own limitation; certain types of multiply scattered waves can bypass the gating. Here, we propose a method, volumetric gating, that introduces ultrasound focus to confocal reflectance imaging to suppress the multiply scattered waves traveling outside the ultrasonic focal volume. The volumetric gating axially rejects the multiply scattered wave traveling to a depth shallower than the object plane while suppressing the deeper penetrating portion that travels across the object plane outside the transversal extent of the ultrasonic focus of 30${\times}$90$ μm^2$. These joint gating actions along the axial and lateral directions attenuate the multiply scattered waves by a factor of 1/1000 or smaller, thereby extending the imaging depth to 12.1 times the scattering mean free path while maintaining the diffraction-limited resolution of 1.5 $μ$m. We demonstrated an increase in the imaging depth and contrast for internal tissue imaging of mouse colon and small intestine through their outer walls. We further developed theoretical and experimental frameworks to characterize the axial distribution of light trajectories inside scattering media. The volumetric gating will serve as an important addition to deep-tissue imaging modalities and a useful tool for studying wave propagation in scattering media.

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