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[生物样本中的非接触式光声断层成像]

[Non-contacting photoacoustic tomography in biological samples].

作者信息

Wang Cheng, Cai Gan, Dong Xiaona, Yang Jing, Weng Xiaofu, Wei Xunbin

机构信息

Institute of Biomedical Optics & Optometry, School of Medical Instrument and Food Engineering, University of Shanghai for Science and Technology, Shanghai 200093,

Institute of Biomedical Optics & Optometry, School of Medical Instrument and Food Engineering, University of Shanghai for Science and Technology, Shanghai 200093, P.R.China.

出版信息

Sheng Wu Yi Xue Gong Cheng Xue Za Zhi. 2017 Jun 1;34(3):439-444. doi: 10.7507/1001-5515.201603045.

Abstract

In photoacoustic imaging the ultrasonic signals are usually detected by contacting transducers. For some applications, contact with the tissue should be avoided, e.g. in those of brain functional imaging. As alternatives to contacting transducers interferometric techniques can be used to acquire photoacoustic signals remotely. Here, a system for non-contact photoacoustic tomography imaging (NCPAT) has been established. This approach enables NCPAT not to exceed laser exposure safety limits. The stimulated source of NCPAT utilized a laser with center wavelength of 532 nm and output intensity of 17.5 mJ/cm , and a laser heterodyne interferometry was used to receive the photoacoustic signals. The NCPAT was used to implement on a rotational imaging geometry for photoacoustic tomography with a real-tissue phantom. The photoacoustic imaging was obtained by applying a reconstruction algorithm to the data acquired for NCPAT. Experiments results showed that the NCPAT system with detection 15 dB bandwidth of 2.25 MHz could resolve spherical optical inclusions with dimension of 500 μm and multi-layered structure with optical contrast in strongly scattering medium. The method could expand the scope of photoacoustic and ultrasonic technology to in-vivo biomedical applications where contact is impractical.

摘要

在光声成像中,超声信号通常由接触式换能器检测。对于某些应用,应避免与组织接触,例如在脑功能成像中。作为接触式换能器的替代方案,干涉测量技术可用于远程获取光声信号。在此,已建立了一种非接触式光声断层成像(NCPAT)系统。这种方法使NCPAT不超过激光暴露安全极限。NCPAT的激发源采用中心波长为532nm、输出强度为17.5mJ/cm²的激光,并使用激光外差干涉测量法接收光声信号。NCPAT用于在具有真实组织模型的光声断层成像的旋转成像几何结构上实现。通过对NCPAT采集的数据应用重建算法获得光声图像。实验结果表明,检测15dB带宽为2.25MHz的NCPAT系统能够分辨尺寸为500μm的球形光学内含物以及在强散射介质中具有光学对比度的多层结构。该方法可将光声和超声技术的应用范围扩展到接触不切实际的体内生物医学应用中。

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