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Photonic nanojet engineering to achieve super-resolution in photoacoustic microscopy - a simulation study

机译:光子纳米射流技术可在光声显微镜中实现超分辨率-模拟研究

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Label-free photoacoustic microscopy (PAM) with nanometric resolution is important to study cellular and sub-cellular structures, microcirculation systems, micro-vascularization, and tumor angiogenesis etc. But, the lateral resolution of a conventional microscopy is limited by optical diffraction. The photonic nanojet generated by silica microspheres can break this diffraction limit. Single silica sphere can provide narrow photonic jet, however its short length and short working distance limits its applications to surface imaging. It is possible to increase the length of the photonic nanojet and its working distance by optimizing the sphere design and its optical properties. In this work, we will present various sphere designs to achieve ultra-long and long-working distance photonic nanojets for far-field imaging. The nanojets thus generated will be used to demonstrate super-resolution photo-acoustic imaging using k-wave simulations. The study will provide new opportunities for many biomedical imaging applications that require finer resolution.
机译:具有纳米分辨率的无标记光声显微镜(PAM)对于研究细胞和亚细胞结构,微循环系统,微血管形成和肿瘤血管生成等非常重要。但是,常规显微镜的横向分辨率受到光学衍射的限制。二氧化硅微球产生的光子纳米射流可以打破该衍射极限。单个二氧化硅球可以提供狭窄的光子射流,但是其短长度和短工作距离限制了其在表面成像中的应用。通过优化球体设计及其光学特性,可以增加光子纳米射流的长度及其工作距离。在这项工作中,我们将介绍各种球体设计,以实现用于远场成像的超长和长工作距离的光子纳米射流。由此产生的纳米射流将用于通过k波模拟来演示超分辨率光声成像。该研究将为许多需要更高分辨率的生物医学成像应用提供新的机会。

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