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Optical-Resolution Photoacoustic Microscopy Using Transparent Ultrasound Transducer

机译:使用透明超声换能器的光学分辨率光声显微镜

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摘要

The opacity of conventional ultrasound transducers can impede the miniaturization and workflow of current photoacoustic systems. In particular, optical-resolution photoacoustic microscopy (OR-PAM) requires the coaxial alignment of optical illumination and acoustic-detection paths through complex beam combiners and a thick coupling medium. To overcome these hurdles, we developed a novel OR-PAM method on the basis of our recently reported transparent lithium niobate (LiNbO3) ultrasound transducer (Dangi et al., Optics Letters, 2019), which was centered at 13 MHz ultrasound frequency with 60% photoacoustic bandwidth. To test the feasibility of wearable OR-PAM, optical-only raster scanning of focused light through a transducer was performed while the transducer was fixed above the imaging subject. Imaging experiments on resolution targets and carbon fibers demonstrated a lateral resolution of 8.5 µm. Further, we demonstrated vasculature mapping using chicken embryos and melanoma depth profiling using tissue phantoms. In conclusion, the proposed OR-PAM system using a low-cost transparent LiNbO3 window transducer has a promising future in wearable and high-throughput imaging applications, e.g., integration with conventional optical microscopy to enable a multimodal microscopy platform capable of ultrasound stimulation.
机译:传统的超声换能器的不透明度可以妨碍电流光声系统的小型化和工作流程。特别地,光学分辨率的光声学显微镜(或PAM)需要通过复梁组合器和厚的耦合介质对光学照明和声学检测路径的同轴对准。为了克服这些障碍,我们在我们最近报道的透明锂铌酸锂(LINI3)超声换能器(Dangi等,光学字母,2019)的基础上开发了一种新颖的或-PAM方法,它以13 MHz超声频率为中心,60 %光声带宽。为了测试可穿戴或PAM的可行性,在换能器固定在成像对象上方时,执行通过换能器的聚焦光的光学光栅扫描。分辨率靶和碳纤维的成像实验证明了8.5μm的横向分辨率。此外,我们证明了使用组织幽灵使用鸡胚和黑色素瘤深度分析的血管系统测绘。总之,使用低成本透明的LINBO3窗口传感器的提议或-PAM系统在可穿戴和高通量成像应用中具有有希望的未来,例如,与常规光学显微镜集成,使能够超声刺激的多模级显微镜平台。

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