采用主动相位稳定谱拼接的光学任意波形产生(OAWG)。

IF 23.4 1区 物理与天体物理 Q1 Physics and Astronomy
Daniel Drayss, Dengyang Fang, Alban Sherifaj, Huanfa Peng, Christoph Füllner, Thomas Henauer, Grigory Lihachev, Lennart Schmitz, Tobias Harter, Wolfgang Freude, Sebastian Randel, Tobias J Kippenberg, Thomas Zwick, Christian Koos
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引用次数: 0

摘要

传统的产生光波形的方法依赖于连续波(CW)激光音调的同相正交(IQ)调制。在这种情况下,产生的光波形的带宽受到底层电子元件的限制,特别是受到为IQ调制器产生驱动信号的数模转换器(dac)的限制。这种带宽瓶颈可以通过使用称为光任意波形生成(OAWG)的概念来克服,其中多个IQ调制器和dac并行工作,首先合成单个频谱片,然后将其组合形成单个超宽带任意光波形。然而,由于难以保持光谱片之间正确的光相位关系,从多个光谱片中有针对性地合成任意光波形一直受到阻碍。在本文中,我们提出并演示了具有有源相位稳定的频谱切片OAWG,它允许有针对性地合成真正任意的光波形。我们通过从四个单独生成的光支路合成具有高达325 GHz的创纪录高带宽的光波形来证明该方案的可行性。在概念验证实验中,我们使用OAWG系统以高达320 GBd的符号速率生成32QAM数据信号,我们传输了超过87公里的单模光纤,并通过双通道非切片光学任意波形测量(OAWM)系统接收,获得了出色的信号质量。我们相信,我们的方案可以释放OAWG的全部潜力,并在高速光通信,光电子数模转换以及科学和工业中的先进测试和测量方面颠覆广泛的应用。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Optical arbitrary waveform generation (OAWG) using actively phase-stabilized spectral stitching.

The conventional way of generating optical waveforms relies on in-phase and quadrature (IQ) modulation of a continuous-wave (CW) laser tone. In this case, the bandwidth of the resulting optical waveform is limited by the underlying electronic components, in particular by the digital-to-analog converters (DACs) generating the drive signals for the IQ modulator. This bandwidth bottleneck can be overcome by using a concept known as optical arbitrary waveform generation (OAWG), where multiple IQ modulators and DACs are operated in parallel to first synthesize individual spectral slices, which are subsequently combined to form a single ultra-broadband arbitrary optical waveform. However, targeted synthesis of arbitrary optical waveforms from multiple spectral slices has so far been hampered by difficulties to maintain the correct optical phase relationship between the slices. In this paper, we propose and demonstrate spectrally sliced OAWG with active phase stabilization, which permits targeted synthesis of truly arbitrary optical waveforms. We demonstrate the viability of the scheme by synthesizing optical waveforms with record-high bandwidths of up to 325 GHz from four individually generated optical tributaries. In a proof-of-concept experiment, we use the OAWG system to generate 32QAM data signals at symbol rates of up to 320 GBd, which we transmit over 87 km of single-mode fiber and receive by a two-channel non-sliced optical arbitrary waveform measurement (OAWM) system, achieving excellent signal quality. We believe that our scheme can unlock the full potential of OAWG and disrupt a wide range of applications in high-speed optical communications, photonic-electronic digital-to-analog conversion, as well as advanced test and measurement in science and industry.

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来源期刊
CiteScore
27.00
自引率
2.60%
发文量
331
审稿时长
20 weeks
期刊介绍: Light: Science & Applications is an open-access, fully peer-reviewed publication.It publishes high-quality optics and photonics research globally, covering fundamental research and important issues in engineering and applied sciences related to optics and photonics.
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