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载波辅助差分检测

Carrier-assisted differential detection.

作者信息

Shieh William, Sun Chuanbowen, Ji Honglin

机构信息

Department of Electrical and Electronic Engineering, The University of Melbourne, Parkville, VIC3010 Australia.

出版信息

Light Sci Appl. 2020 Feb 10;9:18. doi: 10.1038/s41377-020-0253-8. eCollection 2020.

Abstract

To overcome power fading induced by chromatic dispersion in optical fiber communications, optical field recovery is a promising solution for direct detection short-reach applications, such as fast-evolving data center interconnects (DCIs). To date, various direct detection schemes capable of optical field recovery have been proposed, including Kramers-Kronig (KK) and signal-signal beat interference (SSBI) iterative cancellation (IC) receivers. However, they are all restricted to the single sideband (SSB) modulation format, thus conspicuously losing half of the electrical spectral efficiency (SE) compared with double sideband (DSB) modulation. Additionally, SSB suffers from the noise folding issue, requiring a precise optical filter that complicates the receiver design. As such, it is highly desirable to investigate the field recovery of DSB signals via direct detection. In this paper, for the first time, we propose a novel receiver scheme called carrier-assisted differential detection (CADD) to realize optical field recovery of complex-valued DSB signals via direct detection. First, CADD doubles the electrical SE compared with the KK and SSBI IC receivers by adopting DSB modulation without sacrificing receiver sensitivities. Furthermore, by using direct detection without needing a precise receiver optical filter, CADD can employ cost-effective uncooled lasers as opposed to expensive temperature-controlled lasers in coherent systems. Our proposed receiver architecture opens a new class of direct detection schemes that are suitable for photonic integration analogous to homodyne receivers in coherent detection.

摘要

为了克服光纤通信中色散引起的功率衰落,光场恢复是直接检测短距离应用(如快速发展的数据中心互连(DCI))的一种很有前景的解决方案。迄今为止,已经提出了各种能够进行光场恢复的直接检测方案,包括克拉默斯 - 克朗尼格(KK)和信号 - 信号拍频干扰(SSBI)迭代抵消(IC)接收机。然而,它们都局限于单边带(SSB)调制格式,因此与双边带(DSB)调制相比,明显损失了一半的电频谱效率(SE)。此外,SSB存在噪声折叠问题,需要精确的光学滤波器,这使接收机设计变得复杂。因此,非常有必要研究通过直接检测实现DSB信号的场恢复。在本文中,我们首次提出了一种名为载波辅助差分检测(CADD)的新型接收机方案,以通过直接检测实现复值DSB信号的光场恢复。首先,与KK和SSBI IC接收机相比,CADD通过采用DSB调制在不牺牲接收机灵敏度的情况下使电SE提高了一倍。此外,通过使用直接检测而无需精确的接收机光学滤波器,CADD可以采用经济高效的非制冷激光器,而不是相干系统中昂贵的温控激光器。我们提出的接收机架构开启了一类新的直接检测方案,这类方案类似于相干检测中的零差接收机,适用于光子集成。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/5641/7010685/5b98a1d0c769/41377_2020_253_Fig1_HTML.jpg

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