论文标题
使用光学频率梳子启用的全光式希尔伯特变换完全非扫描的三维成像
Fully non-scanning three-dimensional imaging using an all-optical Hilbert transform enabled by an optical frequency comb
论文作者
论文摘要
本文表明,光频梳的精确相位可控性首次实现了全光信号处理。一种新型的全光式希尔伯特变换呈现出基于光频率控制的光脉冲序列的相对载体相和信封的相对载波和包膜的精确控制。通过提出的全光信号处理方法,可以通过高图像分辨率实现完全非扫描的一击三维(3D)成像。该技术可以同时应用于相干相成像。可以根据光学频率梳子的精确光学相可控性生成一对90 $^\ Circ $ - 相移的光学脉冲,从而生成整个光谱带宽,从而实时和精确的全光式Hilbert变换,从而在单镜头中促进光学信号的振幅和相位。在我们的实验中,我们实现了单发3D成像,不确定性为5 $ \rmμ$ m,并获得了以200 $ \ times $ 200像素分辨率的表面剖面。
This paper demonstrates that the precise phase controllability of an optical frequency comb enables all-optical signal processing for the first time. A novel all-optical Hilbert transform is presented with precise control of relative carrier-phase and envelope of optical pulse train based on frequency control utilizing an optical frequency comb. With the proposed all-optical signal processing method, fully non-scanning one-shot three-dimensional (3D) imaging can be realized with high image resolution. The technique can be applied to coherent phase imaging simultaneously. A precise pair of 90$^\circ$-phase-shifted optical pulses over the entire spectral bandwidth can be generated based on the precise optical phase controllability of an optical frequency comb, thereby facilitating a real-time and precise all-optical Hilbert transform to obtain amplitude and phase of optical signal in a single shot of ultrashort pulses. In our experiments, we realized single-shot 3D imaging with an uncertainty of 5 $\rmμ$m and obtained a surface profile with a resolution of 200 $\times$ 200 pixels.