用于体内光声显微镜的聚甲基丙烯酸甲酯匹配层宽带透明超声换能器

IF 7.1 1区 医学 Q1 ENGINEERING, BIOMEDICAL
Jiaming Zhang , Xing Long , Guangjie Zhang , Zhongtian Ma , Wenzhao Li , Yibing Wang , Fan Yang , Riqiang Lin , Changhui Li , Kwok-Ho Lam
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引用次数: 1

摘要

光声成像(PAI)将光学和超声独特地结合在一起,作为一种无创、无标签的成像技术,在生物医学成像中发挥着很有前途的作用。由于传统的不透明超声换能器会阻碍激发光的传输并限制PAI系统的性能,因此已经开发出具有铟锡氧化物(ITO)电极的压电透明超声换能器(TUT),以允许光透射通过换能器并直接照射样品。然而,在没有具有适当性能的透明匹配材料的情况下,这些TUT的带宽通常很窄。在这项工作中,我们建议使用聚甲基丙烯酸甲酯(PMMA)作为匹配层材料来提高铌酸锂(LN)基TUT的带宽。系统地研究了PMMA匹配层对TUT性能的影响。通过优化的PMMA匹配层,>; 即使使用不同的换能器频率,TUT也可以达到50%,与类似报道的工作相比,轴向分辨率大大提高。此外,所开发的TUT原型的成像性能已在PAI系统中进行了评估,并通过体模和体内小动物成像进行了验证。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Broadband transparent ultrasound transducer with polymethyl methacrylate as matching layer for in vivo photoacoustic microscopy

Photoacoustic imaging (PAI) uniquely combines optics and ultrasound, presenting a promising role in biomedical imaging as a non-invasive and label-free imaging technology. As the traditional opaque ultrasound (US) transducers could hinder the transportation of the excitation light and limit the performance of PAI system, piezoelectric transparent ultrasonic transducers (TUTs) with indium tin oxide (ITO) electrodes have been developed to allow light transmission through the transducer and illuminate the sample directly. Nevertheless, without having transparent matching materials with appropriate properties, the bandwidth of those TUTs was generally narrow. In this work, we propose to employ polymethyl methacrylate (PMMA) as the matching layer material to improve the bandwidth of lithium niobate (LN)-based TUTs. The effects of PMMA matching layer on the performance of TUTs have been systematically studied. With the optimized PMMA matching layer, the very wide bandwidth of > 50 % could be achieved for the TUTs even with different transducer frequencies, leading to the great enhancement of axial resolution when compared to the similar reported work. In addition, the imaging performance of the developed TUT prototype has been evaluated in a PAI system and demonstrated by both phantom and in vivo small animal imaging.

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来源期刊
Photoacoustics
Photoacoustics Physics and Astronomy-Atomic and Molecular Physics, and Optics
CiteScore
11.40
自引率
16.50%
发文量
96
审稿时长
53 days
期刊介绍: The open access Photoacoustics journal (PACS) aims to publish original research and review contributions in the field of photoacoustics-optoacoustics-thermoacoustics. This field utilizes acoustical and ultrasonic phenomena excited by electromagnetic radiation for the detection, visualization, and characterization of various materials and biological tissues, including living organisms. Recent advancements in laser technologies, ultrasound detection approaches, inverse theory, and fast reconstruction algorithms have greatly supported the rapid progress in this field. The unique contrast provided by molecular absorption in photoacoustic-optoacoustic-thermoacoustic methods has allowed for addressing unmet biological and medical needs such as pre-clinical research, clinical imaging of vasculature, tissue and disease physiology, drug efficacy, surgery guidance, and therapy monitoring. Applications of this field encompass a wide range of medical imaging and sensing applications, including cancer, vascular diseases, brain neurophysiology, ophthalmology, and diabetes. Moreover, photoacoustics-optoacoustics-thermoacoustics is a multidisciplinary field, with contributions from chemistry and nanotechnology, where novel materials such as biodegradable nanoparticles, organic dyes, targeted agents, theranostic probes, and genetically expressed markers are being actively developed. These advanced materials have significantly improved the signal-to-noise ratio and tissue contrast in photoacoustic methods.
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