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通过超声脉冲引导数字相位共轭实现弹道范围之外的荧光成像。

Fluorescence imaging beyond the ballistic regime by ultrasound pulse guided digital phase conjugation.

作者信息

Si Ke, Fiolka Reto, Cui Meng

机构信息

Howard Hughes Medical Institute, Janelia Farm Research Campus, 19700 Helix Drive, Ashburn, Virginia, 20147, USA.

出版信息

Nat Photonics. 2012 Oct 1;6(10):657-661. doi: 10.1038/nphoton.2012.205. Epub 2012 Aug 26.

Abstract

Fluorescence imaging has revolutionized biomedical research over the past three decades. Its high molecular specificity and unrivaled single molecule level sensitivity have enabled breakthroughs in a variety of research fields. For in vivo applications, its major limitation is the superficial imaging depth as random scattering in biological tissues causes exponential attenuation of the ballistic component of a light wave. Here we present fluorescence imaging beyond the ballistic regime by combining single cycle pulsed ultrasound modulation and digital optical phase conjugation. We demonstrate a near isotropic 3D localized sound-light interaction zone. With the exceptionally high optical gain provided by the digital optical phase conjugation system, we can deliver sufficient optical power to a focus inside highly scattering media for not only fluorescence imaging but also a variety of linear and nonlinear spectroscopy measurements. This technology paves the way for many important applications in both fundamental biology research and clinical studies.

摘要

在过去三十年中,荧光成像彻底改变了生物医学研究。其高分子特异性和无与伦比的单分子水平灵敏度在各种研究领域实现了突破。对于体内应用,其主要限制是表面成像深度,因为生物组织中的随机散射会导致光波弹道分量的指数衰减。在此,我们通过结合单周期脉冲超声调制和数字光学相位共轭,展示了超越弹道区域的荧光成像。我们展示了一个近乎各向同性的三维局部声光相互作用区。借助数字光学相位共轭系统提供的极高光学增益,我们能够将足够的光功率传输到高散射介质内部的一个焦点,不仅用于荧光成像,还可用于各种线性和非线性光谱测量。这项技术为基础生物学研究和临床研究中的许多重要应用铺平了道路。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/dc95/3521493/9867972f0e53/nihms-394889-f0001.jpg

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