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超越单偏振模式对光场进行直接检测。

Direct detection of the optical field beyond single polarization mode.

作者信息

Che Di, Sun Chuanbowen, Shieh William

出版信息

Opt Express. 2018 Feb 5;26(3):3368-3380. doi: 10.1364/OE.26.003368.

Abstract

Direct detection is traditionally regarded as a detection method that recovers only the optical intensity. Compared with coherent detection, it owns a natural advantage-the simplicity-but lacks a crucial capability of field recovery that enables not only the multi-dimensional modulation, but also the digital compensation of the fiber impairments linear with the optical field. Full-field detection is crucial to increase the capacity-distance product of optical transmission systems. A variety of methods have been investigated to directly detect the optical field of the single polarization mode, which normally sends a carrier traveling with the signal for self-coherent detection. The crux, however, is that any optical transmission medium supports at least two propagating modes (e.g. single mode fiber supports two polarization modes), and until now there is no direct detection that can recover the complete set of optical fields beyond one polarization, due to the well-known carrier fading issue after mode demultiplexing induced by the random mode coupling. To avoid the fading, direct detection receivers should recover the signal in an intensity space isomorphic to the optical field without loss of any degrees of freedom, and a bridge should be built between the field and its isomorphic space for the multi-mode field recovery. Based on this thinking, we propose, for the first time, the direct detection of dual polarization modes by a novel receiver concept, the Stokes-space field receiver (SSFR) and its extension, the generalized SSFR for multiple spatial modes. The idea is verified by a dual-polarization field recovery of a polarization-multiplexed complex signal over an 80-km single mode fiber transmission. SSFR can be applied to a much wider range of fields beyond optical communications such as coherent sensing and imaging, where simple field recovery without an extra local laser is desired for enhanced system performance.

摘要

传统上,直接检测被视为一种仅恢复光强度的检测方法。与相干检测相比,它具有天然的优势——简单性,但缺乏场恢复的关键能力,而场恢复不仅能实现多维调制,还能对与光场呈线性关系的光纤损伤进行数字补偿。全场检测对于提高光传输系统的容量 - 距离积至关重要。人们已经研究了多种方法来直接检测单偏振模式的光场,该模式通常会发送与信号一同传播的载波用于自相干检测。然而,关键在于任何光传输介质至少支持两种传播模式(例如单模光纤支持两种偏振模式),并且由于随机模式耦合导致模式解复用后众所周知的载波衰落问题,到目前为止,还没有直接检测方法能够恢复除一个偏振之外的完整光场集。为了避免衰落,直接检测接收机应在与光场同构的强度空间中恢复信号,且不损失任何自由度,并且应为多模场恢复在光场及其同构空间之间搭建一座桥梁。基于此思路,我们首次提出了一种新颖的接收机概念——斯托克斯空间场接收机(SSFR)及其扩展的用于多个空间模式的广义 SSFR,用于直接检测双偏振模式。通过在 80 公里单模光纤传输上对偏振复用复信号进行双偏振场恢复验证了这一想法。SSFR 可应用于光通信之外更广泛的领域,如相干传感和成像,在这些领域中,为了提高系统性能,需要在无需额外本地激光器的情况下进行简单的场恢复。

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