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Wavefront correction and high-resolution in vivo OCT imaging with an objective integrated multi-actuator adaptive lens

机译:物镜集成多驱动器自适应透镜的波前校正和高分辨率体内OCT成像

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摘要

Adaptive optics is rapidly transforming microscopy and high-resolution ophthalmic imaging. The adaptive elements commonly used to control optical wavefronts are liquid crystal spatial light modulators and deformable mirrors. We introduce a novel Multi-actuator Adaptive Lens that can correct aberrations to high order, and which has the potential to increase the spread of adaptive optics to many new applications by simplifying its integration with existing systems. Our method combines an adaptive lens with an imaged-based optimization control that allows the correction of images to the diffraction limit, and provides a reduction of hardware complexity with respect to existing state-of-the-art adaptive optics systems. The Multi-actuator Adaptive Lens design that we present can correct wavefront aberrations up to the 4th order of the Zernike polynomial characterization. The performance of the Multi-actuator Adaptive Lens is demonstrated in a wide field microscope, using a Shack-Hartmann wavefront sensor for closed loop control. The Multi-actuator Adaptive Lens and image-based wavefront-sensorless control were also integrated into the objective of a Fourier Domain Optical Coherence Tomography system for in vivo imaging of mouse retinal structures. The experimental results demonstrate that the insertion of the Multi-actuator Objective Lens can generate arbitrary wavefronts to correct aberrations down to the diffraction limit, and can be easily integrated into optical systems to improve the quality of aberrated images.
机译:自适应光学正在迅速改变显微镜和高分辨率眼科成像技术。通常用于控制光波前的自适应元件是液晶空间光调制器和可变形反射镜。我们推出了一种新颖的多驱动器自适应透镜,该透镜可以将像差校正到高阶,并且有可能通过简化与现有系统的集成,来将自适应光学器件扩展到许多新应用中。我们的方法将自适应透镜与基于图像的优化控制相结合,从而可以将图像校正到衍射极限,并相对于现有的最新自适应光学系统降低硬件复杂性。我们提出的多驱动器自适应透镜设计可以将波前像差校正到Zernike多项式表征的4阶。使用Shack-Hartmann波前传感器进行闭环控制,在宽视场显微镜中证明了多驱动器自适应透镜的性能。多驱动器自适应透镜和基于图像的波前无传感器控制也已集成到用于小鼠视网膜结构体内成像的傅里叶域光学相干断层扫描系统的目标。实验结果表明,插入多驱动物镜可以产生任意波前以校正像差直至衍射极限,并且可以轻松地集成到光学系统中以改善像差图像的质量。

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