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Aberration-free 3D imaging via DMD-based two-photon microscopy and sensorless adaptive optics

机译:通过基于DMD的双光子显微镜和无传感器自适应光学器件的无像差3D成像

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In this Letter, we present a new, to our knowledge, aberration-free 3D imaging technique based on digital micromirror device (DMD)-based two-photon microscopy and sensorless adaptive optics (AO), where 3D random-access scanning and modal wavefront correction are realized using a single DMD chip at 22.7 kHz. Specifically, the DMD is simultaneously used as a deformable mirror to modulate a distorted wavefront and a fast scanner to maneuver the laser focus in a 3D space by designed binary holograms. As such, aberration-free 3D imaging is realized by superposing the wavefront correction and 3D scanning holograms. Compared with conventional AO devices and methods, the DMD system can apply optimal wavefront correction information to different imaging regions or even individual pixels without compromising the scanning speed and device resolution. In the experiments, we first focus the laser through a diffuser and apply sensorless AO to retrieve a corrected focus. After that, the DMD performs 3D scanning on a Drosophila brain labeled with green fluorescent protein. The two-photon imaging results, where optimal wavefront correction information is applied to 3 x 3 separate regions, demonstrate significantly improved resolution and image quality. The new DMD-based imaging solution presents a compact, low-cost, and effective solution for aberration-free two-photon deep tissue imaging, which may find important applications in the field of biophotonics. (C) 2020 Optical Society of America.
机译:在这封信中,我们向我们的知识,基于数字微镜器件(DMD)的自由的无误的3D成像技术提出了一种新的,基于数字微镜器件(DMD),基于二光子显微镜和无传感器自适应光学(AO),其中3D随机访问扫描和模态波前使用单个DMD芯片在22.7 kHz处实现校正。具体地,DMD同时用作可变形镜以调制变形的波前和快速扫描仪,以通过设计的二进制全息图操纵激光焦点在3D空间中。因此,通过叠加波前校正和3D扫描全息图来实现无像差3D成像。与传统的AO器件和方法相比,DMD系统可以在不同的成像区域甚至单个像素施加最佳的波前校正信息,而不会影响扫描速度和设备分辨率。在实验中,我们首先将激光聚焦通过扩散器并涂抹无传感器AO来检索校正的焦点。之后,DMD在用绿色荧光蛋白标记的果蝇脑上进行3D扫描。两个光子成像结果,其中最佳波前校正信息应用于3×3个单独的区域,证明了显着提高的分辨率和图像质量。基于DMD的成像解决方案具有一种紧凑,低成本和有效的无像差两光子深层组织成像解决方案,这可能在生物照相中找到重要的应用。 (c)2020美国光学学会。

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