Chen Maomao, Jiang Laiming, Cook Clare, Zeng Yushun, Vu Tri, Chen Ruimin, Lu Gengxi, Yang Wei, Hoffmann Ulrike, Zhou Qifa, Yao Junjie
Department of Biomedical Engineering, Duke University, Durham, NC 27708, USA.
Department of Biomedical Engineering, University of Southern California, Los Angeles, CA 90089, USA.
Photoacoustics. 2022 Oct 17;28:100417. doi: 10.1016/j.pacs.2022.100417. eCollection 2022 Dec.
Combining focused optical excitation and high-frequency ultrasound detection, optical-resolution photoacoustic microscopy (OR-PAM) can provide micrometer-level spatial resolution with millimeter-level penetration depth and has been employed in a variety of biomedical applications. However, it remains a challenge for OR-PAM to achieve a high imaging speed and a large field of view at the same time. In this work, we report a new approach to implement high-speed wide-field OR-PAM, using a cylindrically-focused transparent ultrasound transducer (CFT-UT). The CFT-UT is made of transparent lithium niobate coated with indium-tin-oxide as electrodes. A transparent cylindrical lens is attached to the transducer surface to provide an acoustic focal line with a length of 9 mm. The excitation light can pass directly through the CFT-UT from the above and thus enables a reflection imaging mode. High-speed imaging is achieved by fast optical scanning of the focused excitation light along the CFT-UT focal line. With the confocal alignment of the optical excitation and acoustic detection, a relatively high detection sensitivity is maintained over the entire scanning range. The CFT-UT-based OR-PAM system has achieved a cross-sectional frame rate of 500 Hz over the scanning range of 9 mm. We have characterized the system's performance on phantoms and demonstrated its application on small animal models in vivo. We expect the new CFT-UT-based OR-PAM will find matched biomedical applications that need high imaging speed over a large field of view.
结合聚焦光学激发和高频超声检测,光学分辨率光声显微镜(OR-PAM)能够提供微米级的空间分辨率和毫米级的穿透深度,已被应用于多种生物医学领域。然而,同时实现高成像速度和大视野对OR-PAM来说仍是一项挑战。在这项工作中,我们报告了一种采用柱面聚焦透明超声换能器(CFT-UT)实现高速宽视野OR-PAM的新方法。CFT-UT由涂有氧化铟锡作为电极的透明铌酸锂制成。一个透明柱面透镜附着在换能器表面,以提供一条长度为9毫米的声学焦线。激发光可以从上方直接穿过CFT-UT,从而实现反射成像模式。通过聚焦激发光沿CFT-UT焦线的快速光学扫描实现高速成像。通过光学激发和声学检测的共焦对准,在整个扫描范围内保持了相对较高的检测灵敏度。基于CFT-UT的OR-PAM系统在9毫米的扫描范围内实现了500赫兹的横截面帧率。我们已经对该系统在体模上的性能进行了表征,并展示了其在小动物模型体内的应用。我们期望新的基于CFT-UT的OR-PAM能够找到适用于需要大视野高成像速度的生物医学应用。