A Transparent Ultrasound Array for Real-Time Optical, Ultrasound, and Photoacoustic Imaging.

IF 5 Q1 ENGINEERING, BIOMEDICAL BME frontiers Pub Date : 2022-06-08 eCollection Date: 2022-01-01 DOI:10.34133/2022/9871098
Haoyang Chen, Sumit Agrawal, Mohamed Osman, Josiah Minotto, Shubham Mirg, Jinyun Liu, Ajay Dangi, Quyen Tran, Thomas Jackson, Sri-Rajasekhar Kothapalli
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Abstract

Objective and Impact Statement. Simultaneous imaging of ultrasound and optical contrasts can help map structural, functional, and molecular biomarkers inside living subjects with high spatial resolution. There is a need to develop a platform to facilitate this multimodal imaging capability to improve diagnostic sensitivity and specificity. Introduction. Currently, combining ultrasound, photoacoustic, and optical imaging modalities is challenging because conventional ultrasound transducer arrays are optically opaque. As a result, complex geometries are used to coalign both optical and ultrasound waves in the same field of view. Methods. One elegant solution is to make the ultrasound transducer transparent to light. Here, we demonstrate a novel transparent ultrasound transducer (TUT) linear array fabricated using a transparent lithium niobate piezoelectric material for real-time multimodal imaging. Results. The TUT-array consists of 64 elements and centered at ~6 MHz frequency. We demonstrate a quad-mode ultrasound, Doppler ultrasound, photoacoustic, and fluorescence imaging in real-time using the TUT-array directly coupled to the tissue mimicking phantoms. Conclusion. The TUT-array successfully showed a multimodal imaging capability and has potential applications in diagnosing cancer, neurological, and vascular diseases, including image-guided endoscopy and wearable imaging.

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用于实时光学、超声和光声成像的透明超声阵列。
目标和影响声明。超声和光学对比度的同时成像可以帮助以高空间分辨率绘制活体内的结构、功能和分子生物标志物。需要开发一种平台来促进这种多模式成像能力,以提高诊断灵敏度和特异性。介绍目前,将超声、光声和光学成像模式相结合是具有挑战性的,因为传统的超声换能器阵列是光学不透明的。因此,复杂的几何形状被用于在同一视场中对光波和超声波进行联合。方法。一个优雅的解决方案是使超声波换能器对光透明。在这里,我们展示了一种新型透明超声换能器(TUT)线性阵列,该阵列使用透明铌酸锂压电材料制造,用于实时多模式成像。后果TUT阵列由64个元素组成,中心位于~6 MHz频率。我们使用直接耦合到组织模拟体模的TUT阵列实时演示了四模式超声、多普勒超声、光声和荧光成像。结论TUT-array成功展示了多模式成像能力,并在诊断癌症、神经和血管疾病方面具有潜在应用,包括图像引导内窥镜和可穿戴成像。
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CiteScore
7.10
自引率
0.00%
发文量
0
审稿时长
16 weeks
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