Li Jingchi, An Shaohua, Ji Honglin, Li Xingfeng, Shieh William, Su Yikai
Opt Express. 2021 Oct 11;29(21):33502-33511. doi: 10.1364/OE.440312.
For high-capacity and short-reach applications, carrier-assisted differential detection (CADD) has been proposed, in which the optical field of a complex-valued double sideband (DSB) signal is reconstructed without using a sharp-edge optical bandpass filter or local oscillator laser. The CADD receiver features a transfer function with periodical nulls in the frequency domain, while the signal-signal beat interference (SSBI) is severely amplified around the frequency nulls of the transfer function. Since the null magnitude at the zero frequency is inevitable, a guard band is required between the carrier and the signal, leading to a higher receiver bandwidth and implementation cost. To reduce the needed guard band, we propose a parallel dual delay-based CADD (PDD-CADD), in which an additional delay is placed parallel to the original delay in the conventional CADD. By this means, the modified transfer function has a sharper roll-off edge around the zero frequency. Consequently, the requirement on the guard band can be relaxed, which maximizes the bandwidth utilization of the system. The parallel delay is first optimized through numerical simulation. We then perform a proof-of-concept experiment to transmit a 100-Gb/s orthogonal frequency division multiplexing (OFDM) 16-ary quadrature amplitude modulation (16-QAM) signal over an 80-km single-mode fiber (SMF). After the fiber transmission, the proposed PDD-CADD can reduce the required guard band from 3 to about 1.2 GHz compared with the single delay-based conventional CADD. To our best knowledge, for the direct detection of a single polarization complex-valued DSB signal without using a sharp-roll-off optical filter, we achieve a record electrical spectral efficiency of 5.9 b/s/Hz.
对于高容量和短距离应用,已提出载波辅助差分检测(CADD),其中复值双边带(DSB)信号的光场在不使用锐边光学带通滤波器或本地振荡器激光器的情况下进行重构。CADD接收器的特征在于其传递函数在频域中具有周期性零点,而信号-信号拍频干扰(SSBI)在传递函数的频率零点附近会被严重放大。由于零频率处的零点幅度不可避免,因此在载波和信号之间需要一个保护带,这导致更高的接收器带宽和实现成本。为了减少所需的保护带,我们提出了一种基于并行双延迟的CADD(PDD-CADD),其中在传统CADD中与原始延迟并行放置一个额外的延迟。通过这种方式,修改后的传递函数在零频率附近具有更陡的滚降边缘。因此,可以放宽对保护带的要求,从而使系统的带宽利用率最大化。首先通过数值模拟对并行延迟进行优化。然后,我们进行了一个概念验证实验,以在80公里的单模光纤(SMF)上传输100 Gb/s正交频分复用(OFDM)16进制正交幅度调制(16-QAM)信号。经过光纤传输后,与基于单延迟传统CADD相比,所提出的PDD-CADD可将所需保护带从3 GHz减少到约1.2 GHz。据我们所知,对于不使用锐滚降光学滤波器直接检测单偏振复值DSB信号,我们实现了5.9 b/s/Hz的创纪录电频谱效率。