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Ultrasonically sculpted virtual relay lens for in situ microimaging

机译:超声雕刻的虚拟中继透镜,用于原位微成像

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摘要

We demonstrate in situ non-invasive relay imaging through a medium without inserting physical optical components.We show that a virtual optical graded-index (GRIN) lens can be sculpted in the medium using in situ reconfigurable ultrasonic interference patterns to relay images through the medium.Ultrasonic wave patterns change the local density of the medium to sculpt a graded refractive index pattern normal to the direction of light propagation,which modulates the phase front of light,causing it to focus within the medium and effectively creating a virtual relay lens.We demonstrate the in situ relay imaging and resolving of small features (22 μm) through a turbid medium (optical thickness =5.7 times the scattering mean free path),which is normally opaque.The focal distance and the numerical aperture of the sculpted optical GRIN lens can be tuned by changing the ultrasonic wave parameters.As an example,we experimentally demonstrate that the axial focal distance can be continuously scanned over a depth of 5.4 mm in the modulated medium and that the numerical aperture can be tuned up to 21.5%.The interaction of ultrasonic waves and light can be mediated through different physical media,including turbid media,such as biological tissue,in which the ultrasonically sculpted GRIN lens can be used for relaying images of the underlying structures through the turbid medium,thus providing a potential alternative to implanting invasive endoscopes.
机译:我们演示了在不插入物理光学组件的情况下通过介质进行的原位无创中继成像。我们表明可以使用原位可重构超声干涉图样在介质中雕刻虚拟光学渐变折射率(GRIN)透镜以通过介质进行图像中继超声波图案会改变介质的局部密度,以雕刻垂直于光传播方向的渐变折射率图案,从而调制光的相前,使其聚焦在介质中并有效地创建虚拟中继透镜。演示了通过不透明的混浊介质(光学厚度=散射平均自由程的5.7倍)进行原位中继成像和分辨小特征(22μm)的过程,该介质通常是不透明的。例如,我们通过实验证明轴向焦距可以连续扫描在调制介质中的深度为5.4 mm,数值孔径可调节至21.5%。超声波和光的相互作用可通过不同的物理介质(包括生物组织等混浊介质)进行调节。超声雕刻的GRIN透镜可用于通过浑浊的介质传递下层结构的图像,从而为植入有创内窥镜提供了潜在的替代方法。

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  • 来源
    《光:科学与应用(英文版)》 |2019年第4期|565-579|共15页
  • 作者单位

    Department of Electrical and Computer Engineering, Carnegie Mellon University, 5000 Forbes Avenue, Pittsburgh, PA 15213, USA;

    Department of Electrical and Computer Engineering, Carnegie Mellon University, 5000 Forbes Avenue, Pittsburgh, PA 15213, USA;

    Carnegie Mellon Neuroscience Institute, Carnegie Mellon University, 5000 Forbes Avenue, Pittsburgh, PA 15213, USA;

    Center for the Neural Basis of Cognition, Carnegie Mellon University, 4400 Forbes Avenue, Pittsburgh, PA 15213, USA;

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  • 入库时间 2024-01-27 08:06:11
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