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Optical focusing inside scattering media with time-reversed ultrasound microbubble encoded light

机译:带有时间反转超声微泡编码光的散射介质内部的光学聚焦

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摘要

Focusing light inside scattering media in a freely addressable fashion is challenging, as the wavefront of the scattered light is highly disordered. Recently developed ultrasound-guided wavefront shaping methods are addressing this challenge, albeit with relatively low modulation efficiency and resolution limitations. In this paper, we present a new technique, time-reversed ultrasound microbubble encoded (TRUME) optical focusing, which can focus light with improved efficiency and sub-ultrasound wavelength resolution. This method ultrasonically destroys microbubbles, and measures the wavefront change to compute and render a suitable time-reversed wavefront solution for focusing. We demonstrate that the TRUME technique can create an optical focus at the site of bubble destruction with a size of similar to 2 mu m. We further demonstrate a twofold enhancement in addressable focus resolution in a microbubble aggregate target by exploiting the nonlinear pressure-to-destruction response of the microbubbles. The reported technique provides a deep tissue-focusing solution with high efficiency, resolution, and specificity.
机译:由于散射光的波前高度无序,因此以一种可自由寻址的方式将光聚焦在散射介质中是一项挑战。尽管具有相对较低的调制效率和分辨率限制,但是最近开发的超声引导波阵面成形方法正在解决这一挑战。在本文中,我们提出了一种新技术,即时间反向超声微泡编码(TRUME)光学聚焦,该技术可以提高光的聚焦效率和亚超声波长分辨率。该方法超声破坏微气泡,并测量波前变化以计算并提供合适的时间反转波前解决方案进行聚焦。我们证明了TRUME技术可以在气泡破坏的位置创建一个光学焦点,其大小类似于2微米。我们进一步证明了通过利用微气泡的非线性压力对破坏的响应,使微气泡聚集目标中的可聚焦焦点分辨率提高了两倍。报道的技术提供了一种具有高效率,分辨率和特异性的深层组织聚焦解决方案。

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