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通过数字微镜器件和二元全息术实现用于双光子显微镜的超快轴向扫描。

Ultrafast axial scanning for two-photon microscopy via a digital micromirror device and binary holography.

作者信息

Cheng Jiyi, Gu Chenglin, Zhang Dapeng, Wang Dien, Chen Shih-Chi

出版信息

Opt Lett. 2016 Apr 1;41(7):1451-4. doi: 10.1364/OL.41.001451.

Abstract

In this Letter, we present an ultrafast nonmechanical axial scanning method for two-photon excitation (TPE) microscopy based on binary holography using a digital micromirror device (DMD), achieving a scanning rate of 4.2 kHz, scanning range of ∼180  μm, and scanning resolution (minimum step size) of ∼270  nm. Axial scanning is achieved by projecting the femtosecond laser to a DMD programmed with binary holograms of spherical wavefronts of increasing/decreasing radii. To guide the scanner design, we have derived the parametric relationships between the DMD parameters (i.e., aperture and pixel size), and the axial scanning characteristics, including (1) maximum optical power, (2) minimum step size, and (3) scan range. To verify the results, the DMD scanner is integrated with a custom-built TPE microscope that operates at 60 frames per second. In the experiment, we scanned a pollen sample via both the DMD scanner and a precision z-stage. The results show the DMD scanner generates images of equal quality throughout the scanning range. The overall efficiency of the TPE system was measured to be ∼3%. With the high scanning rate, the DMD scanner may find important applications in random-access imaging or high-speed volumetric imaging that enables visualization of highly dynamic biological processes in 3D with submillisecond temporal resolution.

摘要

在本信函中,我们展示了一种基于数字微镜器件(DMD)的二元全息术的双光子激发(TPE)显微镜的超快非机械轴向扫描方法,实现了4.2 kHz的扫描速率、约180μm的扫描范围和约270 nm的扫描分辨率(最小步长)。轴向扫描是通过将飞秒激光投射到一个用半径递增/递减的球面波前的二元全息图编程的DMD上来实现的。为指导扫描仪设计,我们推导了DMD参数(即孔径和像素尺寸)与轴向扫描特性之间的参数关系,这些特性包括:(1)最大光功率;(2)最小步长;(3)扫描范围。为验证结果,将DMD扫描仪与一台以每秒60帧运行的定制TPE显微镜集成。在实验中,我们通过DMD扫描仪和一个精密z轴载物台对一个花粉样本进行了扫描。结果表明,DMD扫描仪在整个扫描范围内生成的图像质量相同。测得TPE系统的整体效率约为3%。凭借高扫描速率,DMD扫描仪可能在随机访问成像或高速体积成像中找到重要应用,从而能够以亚毫秒级的时间分辨率对高度动态的生物过程进行三维可视化。

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