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Improved Resolution Optical Time Stretch Imaging Based on High Efficiency In-Fiber Diffraction

机译:基于高效光纤内衍射的高分辨率光学时间拉伸成像

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摘要

Most overlooked challenges in ultrafast optical time stretch imaging (OTSI) are sacrificed spatial resolution and higher optical loss. These challenges are originated from optical diffraction devices used in OTSI, which encode image into spectra of ultrashort optical pulses. Conventional free-space diffraction gratings, as widely used in existing OTSI systems, suffer from several inherent drawbacks: limited diffraction efficiency in a non-Littrow configuration due to inherent zeroth-order reflection, high coupling loss between free-space gratings and optical fibers, bulky footprint, and more importantly, sacrificed imaging resolution due to non-full-aperture illumination for individual wavelengths. Here we report resolution-improved and diffraction-efficient OTSI using in-fiber diffraction for the first time to our knowledge. The key to overcome the existing challenges is a 45° tilted fiber grating (TFG), which serves as a compact in-fiber diffraction device offering improved diffraction efficiency (up to 97%), inherent compatibility with optical fibers, and improved imaging resolution owning to almost full-aperture illumination for all illumination wavelengths. 50 million frames per second imaging of fast moving object at 46 m/s with improved imaging resolution has been demonstrated. This conceptually new in-fiber diffraction design opens the way towards cost-effective, compact and high-resolution OTSI systems for image-based high-throughput detection and measurement.
机译:超快光学时间拉伸成像(OTSI)中最被忽视的挑战是牺牲空间分辨率和更高的光学损耗。这些挑战源自OTSI中使用的光学衍射设备,该设备将图像编码为超短光脉冲的光谱。在现有的OTSI系统中广泛使用的常规自由空间衍射光栅有几个固有的缺点:由于固有的零阶反射,在非Littrow配置中衍射效率受到限制;自由空间光栅和光纤之间的耦合损耗高;占用空间大,更重要的是,由于对各个波长的非全开光照明,牺牲了成像分辨率。在这里,我们首次报告了使用光纤内衍射的分辨率提高且衍射效率高的OTSI。克服现有挑战的关键是45°倾斜光纤光栅(TFG),它可作为紧凑的光纤内衍射设备,提供更高的衍射效率(高达97%),与光纤的固有兼容性以及更高的成像分辨率在所有照明波长下几乎达到全光圈照明。已经证明,以46µm / s的速度对快速移动的物体进行每秒5000万帧的成像,并提高了成像分辨率。这种概念上新颖的光纤内衍射设计为实现基于图像的高通量检测和测量的经济,紧凑和高分辨率OTSI系统开辟了道路。

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