论文标题
基于分数傅立叶变换的激光动力学的固有光谱分析
Intrinsic Spectrum Analysis of Laser Dynamics Based on Fractional Fourier Transform
论文作者
论文摘要
由激光腔中自发发射偶联而产生的固有光谱可以确定激光的能量浓度和相干性,这对于光学高精度测量至关重要。到目前为止,很难在高速激光动力学过程中分析固有频谱,尤其是在快速波长扫描的条件下。在这项工作中,提出了一种新的分析激光固有光谱的方法,该频谱是通过激光能量分解到一系列CHIRP频率信号的,该信号通过相干重建的激光波形的分数傅立叶变换(FRFT)实现。对激光的能量分布的新理解有助于时间频域中激光动力学参数的准确表征。在概念验证实验中,以不同的波长扫描速度测试了商业波长扫描激光的时频动力学过程,还探索了基于FRFT的最窄光谱所需的最合适的测量时间窗口宽度。激光动力学参数的提出的分析方法将促进对激光动力学的理解,并为光学精度测量应用提供好处。
Intrinsic spectrum that results from the coupling of spontaneous emission in a laser cavity, can determine the energy concentration and coherence of lasers, which is crucial for the optical high-precision measurement. Up to now, it is hard to analyze the intrinsic spectrum in the high-speed laser dynamics process, especially under the condition of fast wavelength sweeping. In this work, a new method to analyze the laser intrinsic spectrum is proposed with the laser energy decomposition to a series of chirp-frequency signals, which is realized by fractional Fourier transform (FRFT) of the coherently reconstructed laser waveform. The new understanding of the energy distribution of lasers contributes to the accurate characterization of laser dynamical parameters in time-frequency domain. In the proof-of-concept experiment, the time-frequency dynamical process of a commercial wavelength swept laser is tested with different wavelength-scanning speeds, and the most suitable measurement time window width required for the FRFT-based narrowest spectrum is also explored. The proposed analysis method of laser dynamical parameters will promote the understanding of laser dynamics, and benefit for the optical precision measurement applications.