光学
波前
显微镜
自适应光学
信号(编程语言)
薄层荧光显微镜
双光子激发显微术
空间光调制器
荧光寿命成像显微镜
荧光显微镜
光子学
信噪比(成像)
显微镜
光子
物理
噪音(视频)
材料科学
计算机科学
荧光
人工智能
扫描共焦电子显微镜
图像(数学)
程序设计语言
作者
Wei Yan,Yangrui Huang,Luwei Wang,Yong Guo,Jin Li,Yinru Zhu,Zhigang Yang,Junle Qu
标识
DOI:10.1017/s1431927622000034
摘要
Due to less light scattering and a better signal-to-noise ratio in deep imaging, two-photon fluorescence microscopy (TPFM) has been widely used in biomedical photonics since its advent. However, optical aberrations degrade the performance of TPFM in terms of the signal intensity and the imaging depth and therefore restrict its application. Here, we introduce adaptive optics based on the genetic algorithm to detect the distorted wavefront of the excitation laser beam and then perform aberration correction to optimize the performance of TPFM. By using a spatial light modulator as the wavefront controller, the correction phase is obtained through a signal feedback loop and a process of natural selection. The experimental results show that the signal intensity and imaging depth of TPFM are improved after aberration correction. Finally, the method was applied to two-photon fluorescence lifetime imaging, which helps to improve the signal-to-noise ratio and the accuracy of lifetime analysis. Furthermore, the method can also be implemented in other experiments, such as three-photon microscopy, light-sheet microscopy, and super-resolution microscopy.
科研通智能强力驱动
Strongly Powered by AbleSci AI