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通过将分子振动转化为声波实现对键的选择性光声成象。

Bond-selective photoacoustic imaging by converting molecular vibration into acoustic waves.

机构信息

Department of Physics and Astronomy, Purdue University, West Lafayette, IN 47907, USA.

Weldon School of Biomedical Engineering, Purdue University, West Lafayette, IN 47907, USA.

出版信息

Photoacoustics. 2016 Feb 1;4(1):11-21. doi: 10.1016/j.pacs.2016.01.002. eCollection 2016 Mar.

Abstract

The quantized vibration of chemical bonds provides a way of detecting specific molecules in a complex tissue environment. Unlike pure optical methods, for which imaging depth is limited to a few hundred micrometers by significant optical scattering, photoacoustic detection of vibrational absorption breaks through the optical diffusion limit by taking advantage of diffused photons and weak acoustic scattering. Key features of this method include both high scalability of imaging depth from a few millimeters to a few centimeters and chemical bond selectivity as a novel contrast mechanism for photoacoustic imaging. Its biomedical applications spans detection of white matter loss and regeneration, assessment of breast tumor margins, and diagnosis of vulnerable atherosclerotic plaques. This review provides an overview of the recent advances made in vibration-based photoacoustic imaging and various biomedical applications enabled by this new technology.

摘要

化学键的量子化振动为在复杂的组织环境中检测特定分子提供了一种方法。与纯光学方法不同,由于光散射的影响,光学方法的成像深度限制在几百微米以内,而光声检测利用扩散光子和弱声散射突破了光学扩散极限。这种方法的关键特点包括从几毫米到几厘米的成像深度的高可扩展性,以及化学键选择性,这是光声成像的一种新的对比机制。其生物医学应用涵盖了对脑白质损失和再生的检测、乳房肿瘤边缘的评估以及易损动脉粥样硬化斑块的诊断。本文综述了基于振动的光声成像的最新进展,以及这项新技术带来的各种生物医学应用。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/d0a6/4811918/1f90ee115aa4/gr1.jpg

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