Li Siwei, Wu Jingjing, Li Heng, Lin Danying, Yu Bin, Qu Junle
Opt Express. 2018 Sep 3;26(18):23585-23593. doi: 10.1364/OE.26.023585.
Refocusing after Scanning using Helical phase engineering (RESCH) microscopy has previously been demonstrated to provide volumetric information from a single 2D scan. However, the practical application of this method is challenging due to its limited image acquisition speed and spatial resolution. Here, we report on a combination of RESCH and multifocal structured illumination microscopy (MSIM) to improve the image acquisition speed and spatial resolution. A phase mask is introduced to modulate the conventional point spread function (PSF) to the double-helix PSF (DH-PSF), which provides volumetric information, and meanwhile, sparse multifocal illumination patterns are generated by a digital micromirror device (DMD) for parallel 3D subdiffractive imaging information acquisition. We also present a strategy for processing the collected raw data with a Richardson-Lucy deconvolution and pixel reassignment algorithm to improve the spatial resolution of the depth estimation and imaging performance. The proposed 3D image scanning microscopy can record 3D specimen information and the corresponding depth information from a single multi-spot 2D planar scan, which ensures faster data acquisition, larger field of view, and higher spatial resolution than RESCH. Finally, we demonstrate the capability of our system with actual experiments.
利用螺旋相位工程(RESCH)显微镜进行扫描后重新聚焦此前已被证明可从单次二维扫描中提供体积信息。然而,由于其有限的图像采集速度和空间分辨率,该方法的实际应用具有挑战性。在此,我们报告了RESCH与多焦点结构照明显微镜(MSIM)的结合,以提高图像采集速度和空间分辨率。引入一个相位掩模将传统的点扩散函数(PSF)调制为双螺旋PSF(DH-PSF),其可提供体积信息,同时,由数字微镜器件(DMD)生成稀疏多焦点照明图案用于并行三维亚衍射成像信息采集。我们还提出了一种用理查森- Lucy反卷积和像素重新分配算法处理采集到的原始数据的策略,以提高深度估计的空间分辨率和成像性能。所提出的三维图像扫描显微镜可以从单次多点二维平面扫描中记录三维样本信息和相应的深度信息,这确保了比RESCH更快的数据采集、更大的视野和更高的空间分辨率。最后,我们通过实际实验展示了我们系统的能力。