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Performance evaluation of a sensorless adaptive optics multiphoton microscope

机译:无传感器自适应光学多光子显微镜的性能评估

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摘要

A wavefront sensorless adaptive optics technique was combined with a custom-made multiphoton microscope to correct for specimen-induced aberrations. A liquid-crystal-on-silicon (LCoS) modulator was used to systematically generate Zernike modes during image recording. The performance of the instrument was evaluated in samples providing different nonlinear signals and the benefit of correcting higher order aberrations was always noticeable (in both contrast and resolution). The optimum aberration pattern was stable in time for the samples here involved. For a particular depth location within the sample, the wavefront to be precompensated was independent on the size of the imaged area (up to approximate to 360 x 360 m(2)). The mode combination optimizing the recorded image depended on the Zernike correction control sequence; however, the final images hardly differed. At deeper locations, a noticeable dominance of spherical aberration was found. The influence of other aberration terms was also compared to the effect of the spherical aberration.
机译:将波前无传感器自适应光学技术与定制的多光子显微镜相结合,以校正标本引起的像差。硅基液晶(LCoS)调制器用于在图像记录期间系统地生成Zernike模式。在提供不同非线性信号的样品中评估了仪器的性能,并且始终可以注意到校正高阶像差的好处(在对比度和分辨率方面)。对于此处涉及的样品,最佳像差模式在时间上是稳定的。对于样品中的特定深度位置,要进行预补偿的波前与成像区域的大小无关(最多约360 x 360 m(2))。优化记录图像的模式组合取决于Zernike校正控制序列。但是,最终图像几乎没有差异。在更深的地方,发现了明显的球差。还将其他像差项的影响与球面像差的影响进行了比较。

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