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利用虚拟超声光波导克服限制与焦距之间的权衡。

Overcoming the tradeoff between confinement and focal distance using virtual ultrasonic optical waveguides.

作者信息

Scopelliti Matteo Giuseppe, Huang Hengji, Pediredla Adithya, Narasimhan Srinivasa G, Gkioulekas Ioannis, Chamanzar Maysamreza

出版信息

Opt Express. 2020 Dec 7;28(25):37459-37473. doi: 10.1364/OE.404986.

Abstract

A conventional optical lens can be used to focus light into the target medium from outside, without disturbing the medium. The focused spot size is proportional to the focal distance in a conventional lens, resulting in a tradeoff between penetration depth in the target medium and spatial resolution. We have shown that virtual ultrasonically sculpted gradient-index (GRIN) optical waveguides can be formed in the target medium to steer light without disturbing the medium. Here, we demonstrate that such virtual waveguides can relay an externally focused Gaussian beam of light through the medium beyond the focal distance of a single external physical lens, to extend the penetration depth without compromising the spot size. Moreover, the spot size can be tuned by reconfiguring the virtual waveguide. We show that these virtual GRIN waveguides can be formed in transparent and turbid media, to enhance the confinement and contrast ratio of the focused beam of light at the target location. This method can be extended to realize complex optical systems of external physical lenses and in situ virtual waveguides, to extend the reach and flexibility of optical methods.

摘要

传统光学透镜可用于从外部将光聚焦到目标介质中,而不干扰该介质。在传统透镜中,聚焦光斑尺寸与焦距成正比,这导致在目标介质中的穿透深度和空间分辨率之间存在权衡。我们已经表明,可以在目标介质中形成虚拟超声雕刻渐变折射率(GRIN)光波导,以引导光而不干扰介质。在此,我们证明这种虚拟波导可以将外部聚焦的高斯光束通过介质传输到单个外部物理透镜焦距之外,从而在不影响光斑尺寸的情况下扩展穿透深度。此外,光斑尺寸可以通过重新配置虚拟波导进行调整。我们表明,这些虚拟GRIN波导可以在透明和浑浊介质中形成,以增强目标位置处聚焦光束的限制和对比度。该方法可以扩展以实现外部物理透镜和原位虚拟波导的复杂光学系统,从而扩展光学方法的作用范围和灵活性。

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