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有限带宽对伪随机二进制序列(PRBS)调制光谱的影响。

Impact of finite bandwidth on PRBS-modulated optical spectra.

作者信息

Stepien Witold, Marciante John R

出版信息

Opt Express. 2022 Sep 26;30(20):35894-35910. doi: 10.1364/OE.467955.

Abstract

Applying a pseudo-random binary sequence (PRBS) to phase modulators is a recent development in the broadening of optical spectra of laser sources to defeat stimulated Brillouin scattering (SBS). The theoretical underpinning of this method relies on alternating the phase of the optical signal between its native value and an out-of-phase value (i.e., imposing a binary phase shift of 0 or π in a pseudo random manner) to prevent coherent buildup of the SBS acoustic grating. In real physical systems, realizing such a binary shift is impossible due to the finite response times of the electronics and electro-optic components. The influence of these effects is investigated in this work, specifically the finite bandwidth of the electronic PRBS generator and the frequency-dependent response of the phase modulator, on the resultant temporal waveforms of the PRBS signal and its RF optical spectra. It is found that the optimal SBS suppression in real systems is achieved when the phase modulator is driven at a voltage beyond , even though driving at has been deemed as ideal. Moreover, both the SBS suppression and spectral broadening are always weaker than what is predicted by analytical results since any degradation of the sharp edges of the PRBS signal result in loss of high-frequency content in the RF spectrum of the PRBS signal. Lastly, it is noticed that the typical ways of measuring spectral width are not relevant when applied to the complex PRBS RF optical spectrum. An 'equivalent spectral width' is defined to accurately quantify the correlation between spectral width an SBS suppression.

摘要

将相伪随机二进制序列(PRBS)应用于相位调制器是近期在拓宽激光源光谱以抑制受激布里渊散射(SBS)方面的一项进展。该方法的理论基础是使光信号的相位在其固有值和异相值之间交替(即以伪随机方式施加0或π的二进制相移),以防止SBS声光栅的相干积累。在实际物理系统中,由于电子和电光组件的有限响应时间,实现这种二进制相移是不可能的。在这项工作中,研究了这些效应的影响,特别是电子PRBS发生器的有限带宽和相位调制器的频率相关响应,对PRBS信号的合成时间波形及其射频光谱的影响。研究发现,在实际系统中,当相位调制器在超过 的电压下驱动时,可实现最佳的SBS抑制,尽管在 下驱动被认为是理想的。此外,由于PRBS信号尖锐边缘的任何退化都会导致PRBS信号射频光谱中高频成分的损失,因此SBS抑制和光谱展宽总是比分析结果预测的要弱。最后,需要注意的是,当应用于复杂的PRBS射频光谱时,测量光谱宽度的典型方法并不适用。定义了一个“等效光谱宽度”来准确量化光谱宽度与SBS抑制之间的相关性。

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