论文标题

双 - 丝状分子中相对梳状相位抖动的功率光谱密度分析

Power spectral density analysis of relative comb-line phase jitter in a twin-soliton molecule

论文作者

Tian, Haochen, Zou, Defeng, Song, Youjian, Hu, Minglie

论文摘要

对两个有界光学孤子之间的相对相位演变进行的研究对于其在发展较大的电信能力的潜在应用是光纤传输线的较大电信能力,分辨率改进的改进超快表征方法和全光信息存储的开发。在这里,我们表征了由被动模式锁定的ER:纤维激光器产生的孤子分子对的相对梳状相位抖动频谱密度(PSD)。通过在一个特定光谱干涉条纹中跟踪两个选定波长之间的强度差,通过平衡检测来测量相对的梳状相位噪声PSD。估计的测量分辨率为10^(-14)RAD2/Hz水平,从10 MHz到100 Hz的估计集成相噪声为2.04 MRAD。估计的相对线宽远低于1 MHz。相位噪声PSD与强度噪声PSD之间的比较表明,AM-PM转换在两个孤子之间的相对相位抖动动力学中起重要作用。我们的光谱干扰条纹跟踪技术对于其简单性很有吸引力,并且在相位噪声测量中显示了超高分辨率的潜力,为两个独立模式锁定激光器和干涉仪的光学长度稳定的光学孤子分子的相对相噪声稳定提供了一种超敏感的替代方法。

Investigation on the relative phase evolution between two bounded optical solitons is essential for its potential applications in development of larger telecommunication capacity of optical fiber transmission lines, resolution improvement in advancing ultrafast characterization approaches and development of all-optical information storage. Here we characterized relative comb-line phase jitter power spectral density (PSD) of a soliton molecule pair generated from a passively mode-locked Er:fiber laser. Through tracking the intensity difference between two selected wavelengths in one certain spectral interference fringe, the relative comb-line phase noise PSD is measured by balanced detection. The estimated measurement resolution is at 10^(-14) rad2/Hz level and the estimated integrated phase noise from 10 MHz to 100 Hz is 2.04 mrad. The estimated relative linewidth is far below 1 mHz. Comparison between phase noise PSD and intensity noise PSD indicates that AM-PM conversion plays an important role in relative phase jitter dynamics between the two solitons. Our spectral interference fringe tracking technique is attractive for its simplicity and shows potential in ultra-high resolution in phase noise measurement, providing an ultra-sensitive alternative approach for relative phase noise stabilization of optical soliton molecules, between two independent mode-locked lasers and optical length stabilization of interferometers.

扫码加入交流群

加入微信交流群

微信交流群二维码

扫码加入学术交流群,获取更多资源