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面向即时医疗和可穿戴应用的低成本便携式光声显微镜

Towards a Low-Cost and Portable Photoacoustic Microscope for Point-of-Care and Wearable Applications.

作者信息

Dangi Ajay, Agrawal Sumit, Datta Gaurav Ramesh, Srinivasan Visweshwar, Kothapalli Sri-Rajasekhar

机构信息

Department of Biomedical Engineering, Pennsylvania State University, University Park, USA.

School of Electrical Engineering and Computer Science, Pennsylvania State University, University Park, USA.

出版信息

IEEE Sens J. 2020 Jul;20(13):6881-6888. doi: 10.1109/jsen.2019.2935684. Epub 2019 Aug 15.

Abstract

Several breakthrough applications in biomedical imaging have been reported in the recent years using advanced photoacoustic microscopy imaging systems. While two photon and other optical microscopy systems have recently emerged in portable and wearable form, there is much less work reported on the portable and wearable photoacoustic microscopy (PAM) systems. Working towards this goal, we report our studies on a low-cost and portable photoacoustic microscopy system that uses a custom fabricated 2.5 mm diameter ring ultrasound transducer integrated with a fiber-coupled laser diode. The ultrasound transducer is centered at 17.25 MHz, and shows ~ 45% and ~ 100% fractional bandwidths for ultrasound pulse-echo and photoacoustic A-line signals respectively. To achieve overall system portability, besides the imaging head, other backend imaging system components need to be readily portable as well. In this direction, we have studied the potential use of compact pre-amplifiers, scanning stages and microcontroller based data acquisition and reconstruction for photoacoustic imaging. The portable PAM system is validated by imaging phantoms embedded with light absorbing targets. Future directions that will likely help achieve a completely portable and wearable photoacoustic microscopy system are discussed.

摘要

近年来,利用先进的光声显微镜成像系统在生物医学成像领域已有多项突破性应用报道。虽然双光子及其他光学显微镜系统最近已出现便携式和可穿戴形式,但关于便携式和可穿戴光声显微镜(PAM)系统的报道却少得多。为实现这一目标,我们报告了对一种低成本便携式光声显微镜系统的研究,该系统使用定制制造的直径2.5毫米的环形超声换能器,并与光纤耦合激光二极管集成。该超声换能器的中心频率为17.25 MHz,对于超声脉冲回波信号和光声A线信号分别显示约45%和约100%的分数带宽。为实现整个系统的便携性,除成像头外,其他后端成像系统组件也需要易于便携。在此方向上,我们研究了紧凑型前置放大器、扫描台以及基于微控制器的数据采集和重建在光声成像中的潜在用途。通过对嵌入光吸收目标的体模成像验证了该便携式PAM系统。文中还讨论了未来可能有助于实现完全便携式和可穿戴光声显微镜系统的发展方向。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/bc8b/7323929/a70e388e4d5e/nihms-1601047-f0006.jpg

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