80GHz waveform generator by optical Fourier synthesis of four spectral sidebands (Conference Presentation)

J. Fatome, K. Hammani, B. Kibler, C. Finot
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Abstract

Versatile and easy to implement methods to generate arbitrary optical waveforms at high repetition rates are of considerable interest with applications in optical communications, all-optical signal processing, instrumentation systems and microwave signal manipulation. While shaping sinusoidal, Gaussian or hyperbolic secant intensity profiles is commonly achieved by means of modulators or mode-locked lasers, other pulse profiles such as parabolic, triangular or flat-top shapes still remain challenging to synthesize. In this context, several strategies were already explored. First, the linear pulse shaping is a common method to carve an initial ultrashort pulse train into the desired shape. The line-by-line shaping of a coherent frequency comb made of tens of spectral components was also investigated to generate more complex structures whereas Fourier synthesis of a few discrete frequencies spectrum was exploited to efficiently generate high-fidelity ultrafast periodic intensity profiles. Besides linear shaping techniques, several nonlinear methods were implemented to benefit from the adiabatic evolution of the intensity pulse profile upon propagation in optical fibers. Other examples of efficient methods are based on the photonic generation involving specific Mach-Zehnder modulators, microwave photonic filters as well as frequency-to-time conversion. In this contribution, we theoretically and experimentally demonstrate a new approach enabling the synthesis of periodic high-repetition rate pulses with various intensity profiles ranging from parabola to triangular and flat-top pulses. More precisely by linear phase and amplitude shaping of only four spectral lines is it possible to reach the targeted temporal profile. Indeed, tailoring the input symmetric spectrum only requires the determination of two physical parameters: the phase difference between the inner and outer spectral sidebands and the ratio between the amplitude of these sidebands. Therefore, a systematic bidimensional analysis provides the optimum parameters and also highlights that switching between the different waveforms is achieved by simply changing the spectral phase between the inner and outer sidebands. We successfully validate this concept with the generation of high-fidelity ultrafast periodic waveforms at 40 GHz by shaping with a liquid cristal on insulator a four sideband comb resulting from a phase-modulated continuous wave. In order to reach higher repetition rates, we also describe a new scenario to obtain the required initial spectrum by taking advantage of the four-wave mixing process occurring in a highly nonlinear fiber. This approach is experimentally implemented at a repetition rate of 80-GHz by use of intensity and phase measurements that stress that full-duty cycle, high-quality, triangular, parabolic or flat-top profiles are obtained in full agreement with numerical simulations. The reconfigurable property of this photonic waveform generator is confirmed. Finally, the generation of bunch of shaped pulses is investigated, as well as the impact of Brillouin backscattering.
基于四谱边带光学傅立叶合成的80GHz波形发生器(会议报告)
在光通信、全光信号处理、仪器系统和微波信号处理等领域,产生高重复率任意光波形的通用且易于实现的方法具有相当大的应用价值。虽然整形正弦、高斯或双曲正割强度分布通常是通过调制器或锁模激光器来实现的,但其他脉冲分布,如抛物线、三角形或平顶形状的合成仍然具有挑战性。在这方面,已经探讨了若干战略。首先,线性脉冲整形是将初始超短脉冲串雕刻成所需形状的常用方法。研究了由数十个频谱分量组成的相干频率梳的逐行整形以生成更复杂的结构,而利用几个离散频谱的傅立叶合成来有效地生成高保真的超快周期强度分布图。除了线性整形技术外,还采用了几种非线性方法来利用强度脉冲分布在光纤中传播时的绝热演化。其他有效方法的例子是基于光子产生涉及特定的马赫-曾德尔调制器,微波光子滤波器以及频率-时间转换。在这一贡献中,我们从理论和实验上证明了一种新的方法,可以合成具有各种强度分布的周期性高重复率脉冲,从抛物线到三角形和平顶脉冲。更精确地说,通过仅对四条谱线进行线性相位和幅度整形,就有可能达到目标时间剖面。实际上,裁剪输入对称频谱只需要确定两个物理参数:内外光谱边带之间的相位差以及这些边带振幅之间的比值。因此,系统的二维分析提供了最佳参数,并强调通过简单地改变内外边带之间的频谱相位来实现不同波形之间的切换。我们成功地验证了这一概念,并通过在绝缘体上的液晶形成由相位调制连续波产生的四边带梳状波形,在40 GHz产生高保真超快周期波形。为了达到更高的重复频率,我们还描述了一种利用高度非线性光纤中发生的四波混频过程来获得所需初始频谱的新方案。通过强度和相位测量,该方法在80 ghz的重复率下进行了实验实现,强调获得了与数值模拟完全一致的全占空比、高质量、三角形、抛物线或平顶剖面。验证了该光子波形发生器的可重构性。最后,研究了束状脉冲的产生,以及布里渊后向散射的影响。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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