Bathe-Peters M, Annibale P, Lohse M J
Opt Express. 2018 Feb 5;26(3):2359-2368. doi: 10.1364/OE.26.002359.
Microscopic imaging at high spatial-temporal resolution over long time scales (minutes to hours) requires rapid and precise stabilization of the microscope focus. Conventional and commercial autofocus systems are largely based on piezoelectric stages or mechanical objective actuators. Objective to sample distance is either measured by image analysis approaches or by hardware modules measuring the intensity of reflected infrared light. We propose here a truly all-optical microscope autofocus taking advantage of an electrically tunable lens and a totally internally reflected infrared probe beam. We implement a feedback-loop based on the lateral position of a totally internally reflected infrared laser on a quadrant photodetector, as an indicator of the relative defocus. We show here how to treat the combined contributions due to mechanical defocus and deformation of the tunable lens. As a result, the sample can be kept in focus without any mechanical movement, at rates up to hundreds of Hertz. The device requires only reflective optics and can be implemented at a fraction of the cost required for a comparable piezo-based actuator.
在长时间尺度(数分钟到数小时)内实现高时空分辨率的显微成像需要对显微镜焦点进行快速精确的稳定控制。传统的和商业的自动对焦系统主要基于压电平台或机械物镜驱动器。物镜到样品的距离要么通过图像分析方法测量,要么通过测量反射红外光强度的硬件模块测量。我们在此提出一种真正的全光学显微镜自动对焦方法,利用电可调透镜和全内反射红外探测光束。我们基于全内反射红外激光在象限光电探测器上的横向位置实现一个反馈回路,以此作为相对离焦的指标。我们展示了如何处理由于机械离焦和可调透镜变形产生的综合影响。结果是,样品可以在没有任何机械移动的情况下保持聚焦,速率高达数百赫兹。该装置仅需反射光学元件,并且可以以基于压电的类似驱动器所需成本的一小部分来实现。