Ji Cheng, Zhu Yukun, He Enxing, Liu Qingqing, Zhou Dakai, Xie Shunyu, Wu Hanmeng, Zhang Jinfeng, Du Kuangwei, Chen Youhua, Liu Wenjie, Kuang Cuifang
Opt Express. 2024 Jan 15;32(2):1635-1649. doi: 10.1364/OE.507762.
High throughput has become an important research direction in the field of super-resolution (SR) microscopy, especially in improving the capability of dynamic observations. In this study, we present a hexagonal lattice structured illumination microscopy (hexSIM) system characterized by a large field of view (FOV), rapid imaging speed, and high power efficiency. Our approach employs spatial light interference to generate a two-dimensional hexagonal SIM pattern, and utilizes electro-optical modulators for high-speed phase shifting. This design enables the achievement of a 210-µm diameter SIM illumination FOV when using a 100×/1.49 objective lens, capturing 2048 × 2048 pixel images at an impressive 98 frames per second (fps) single frame rate. Notably, this method attains a near 100% full field-of-view and power efficiency, with the speed limited only by the camera's capabilities. Our hexSIM demonstrates a substantial 1.73-fold improvement in spatial resolution and necessitates only seven phase-shift images, thus enhancing the imaging speed compared to conventional 2D-SIM.
高通量已成为超分辨率(SR)显微镜领域的一个重要研究方向,尤其是在提高动态观测能力方面。在本研究中,我们展示了一种六边形晶格结构照明显微镜(hexSIM)系统,其特点是具有大视场(FOV)、快速成像速度和高功率效率。我们的方法利用空间光干涉来生成二维六边形SIM图案,并使用电光调制器进行高速相移。当使用100×/1.49物镜时,这种设计能够实现直径为210 µm的SIM照明视场,以每秒98帧(fps)的单帧速率捕获2048×2048像素的图像。值得注意的是,这种方法实现了近乎100%的全视场和功率效率,速度仅受相机能力限制。我们的hexSIM在空间分辨率上有显著的1.73倍提升,并且仅需七张相移图像,因此与传统二维SIM相比提高了成像速度。