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用于大视野双光子显微镜的宽带声光偏转器。

Wide-band acousto-optic deflectors for large field of view two-photon microscope.

作者信息

Jiang Runhua, Zhou Zhenqiao, Lv Xiaohua, Zeng Shaoqun

机构信息

Britton Chance Center for Biomedical Photonics, Wuhan National Laboratory for Optoelectronics, Huazhong University of Science and Technology, Wuhan, 430074, China.

出版信息

Rev Sci Instrum. 2012 Apr;83(4):043709. doi: 10.1063/1.4705972.

Abstract

Acousto-optic deflector (AOD) is an attractive scanner for two-photon microscopy because it can provide fast and versatile laser scanning and does not involve any mechanical movements. However, due to the small scan range of available AOD, the field of view (FOV) of the AOD-based microscope is typically smaller than that of the conventional galvanometer-based microscope. Here, we developed a novel wide-band AOD to enlarge the scan angle. Considering the maximum acceptable acoustic attenuation in the acousto-optic crystal, relatively lower operating frequencies and moderate aperture were adopted. The custom AOD was able to provide 60 MHz 3-dB bandwidth and 80% peak diffraction efficiency at 840 nm wavelength. Based on a pair of such AOD, a large FOV two-photon microscope was built with a FOV up to 418.5 μm (40× objective). The spatiotemporal dispersion was compensated simultaneously with a single custom-made prism. By means of dynamic power modulation, the variation of laser intensity within the FOV was reduced below 5%. The lateral and axial resolution of the system were 0.58-2.12 μm and 2.17-3.07 μm, respectively. Pollen grain images acquired by this system were presented to demonstrate the imaging capability at different positions across the entire FOV.

摘要

声光偏转器(AOD)是一种用于双光子显微镜的有吸引力的扫描仪,因为它可以提供快速且通用的激光扫描,并且不涉及任何机械运动。然而,由于现有AOD的扫描范围较小,基于AOD的显微镜的视场(FOV)通常小于传统的基于振镜的显微镜。在此,我们开发了一种新型宽带AOD以扩大扫描角度。考虑到声光晶体中可接受的最大声衰减,采用了相对较低的工作频率和适中的孔径。定制的AOD在840nm波长下能够提供60MHz的3dB带宽和80%的峰值衍射效率。基于一对这样的AOD,构建了一台大视场双光子显微镜,其视场可达418.5μm(40倍物镜)。利用单个定制棱镜同时补偿了时空色散。通过动态功率调制,视场内激光强度的变化降低到5%以下。该系统的横向和轴向分辨率分别为0.58 - 2.12μm和2.17 - 3.07μm。展示了通过该系统采集的花粉粒图像,以证明在整个视场不同位置的成像能力。

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