Dong Biqin, Sun Cheng, Zhang Hao F
IEEE Trans Biomed Eng. 2017 Jan;64(1):4-15. doi: 10.1109/TBME.2016.2605451. Epub 2016 Sep 1.
Photoacoustic (PA) imaging emerges as a unique tool to study biological samples based on optical absorption contrast. In PA imaging, piezoelectric transducers are commonly used to detect laser-induced ultrasonic waves. However, they typically lack adequate broadband sensitivity at ultrasonic frequency higher than 100 MHz, whereas their bulky size and optically opaque nature cause technical difficulties in integrating PA imaging with conventional optical imaging modalities. To overcome these limitations, optical methods of ultrasound detection were developed and shown their unique applications in PA imaging.
We provide an overview of recent technological advances in optical methods of ultrasound detection and their applications in PA imaging. A general theoretical framework describing sensitivity, bandwidth, and angular responses of optical ultrasound detection is also introduced.
Optical methods of ultrasound detection can provide improved detection angle and sensitivity over significantly extended bandwidth. In addition, its versatile variants also offer additional advantages, such as device miniaturization, optical transparency, mechanical flexibility, minimal electrical/mechanical crosstalk, and potential noncontact PA imaging.
The optical ultrasound detection methods discussed in this review and their future evolution may play an important role in PA imaging for biomedical study and clinical diagnosis.
光声(PA)成像作为一种基于光吸收对比度来研究生物样本的独特工具而出现。在光声成像中,压电换能器通常用于检测激光诱导的超声波。然而,它们在高于100MHz的超声频率下通常缺乏足够的宽带灵敏度,而且其体积庞大以及光学不透明的特性在将光声成像与传统光学成像方式集成时会导致技术难题。为了克服这些限制,人们开发了超声检测的光学方法,并展示了它们在光声成像中的独特应用。
我们概述了超声检测光学方法的最新技术进展及其在光声成像中的应用。还介绍了一个描述光学超声检测的灵敏度、带宽和角度响应的通用理论框架。
超声检测的光学方法可以在显著扩展的带宽上提供改进的检测角度和灵敏度。此外,其多种变体还具有其他优势,如设备小型化、光学透明、机械灵活性、最小的电/机械串扰以及潜在的非接触式光声成像。
本综述中讨论的光学超声检测方法及其未来的发展可能在用于生物医学研究和临床诊断的光声成像中发挥重要作用。