Xie Tangyao, Xin Xiangjun, Fang Liye, Yan Hengxin, Pan Xiaolong, Li Xinying
Opt Express. 2024 Mar 25;32(7):11337-11345. doi: 10.1364/OE.520061.
High-order quadrature amplitude modulation (QAM) can effectively improve the capacity and spectral efficiency of coherent optical transmission systems. However, as the modulation order increases, the signal becomes less tolerant to noise and nonlinear effects during transmission, and the implementation cost also increases. We propose a single carrier (SC) and orthogonal frequency division multiplexing (OFDM) hybrid coherent optical transmission scheme based on a 1-bit bandpass (BP) delta-sigma modulation (DSM). The driving I-channel and Q-channel signals for the optical in-phase/quadrature (I/Q) modulator carry SC-modulated and OFDM-modulated transmitter data, respectively. Optical quadrature-phase-shift-keying (QPSK) modulation is realized by the 1-bit DSM quantizer and I/Q modulator, which can effectively suppress quantization noise and reduce the complexity of digital signal processing (DSP) and the performance requirements of optoelectronic devices. In addition, the hybrid transmission of SC and OFDM can balance the advantages of both to meet the variable channel conditions and complex application scenarios. High-fidelity transmission of SC 512QAM and OFDM 512QAM hybrid signals, in the form of a 60 Gbaud optical QPSK signal, over 60 km single-mode fiber-28 (SMF-28) is verified by offline experiments, and the bit error rates (BERs) of both SC 512QAM and OFDM 512QAM are below the hard-decision forward-error correction (HD-FEC) threshold of 3.8e-3.
高阶正交幅度调制(QAM)能够有效提高相干光传输系统的容量和频谱效率。然而,随着调制阶数的增加,信号在传输过程中对噪声和非线性效应的容忍度降低,并且实现成本也会增加。我们提出了一种基于1比特带通(BP)增量-Σ调制(DSM)的单载波(SC)和正交频分复用(OFDM)混合相干光传输方案。用于光同相/正交(I/Q)调制器的驱动I通道和Q通道信号分别承载SC调制和OFDM调制的发射机数据。通过1比特DSM量化器和I/Q调制器实现光正交相移键控(QPSK)调制,这可以有效抑制量化噪声,降低数字信号处理(DSP)的复杂度以及光电器件的性能要求。此外,SC和OFDM的混合传输可以平衡两者的优势,以满足可变的信道条件和复杂的应用场景。通过离线实验验证了60 Gbaud光QPSK信号形式的SC 512QAM和OFDM 512QAM混合信号在60 km单模光纤-28(SMF-28)上的高保真传输,并且SC 512QAM和OFDM 512QAM的误码率(BER)均低于3.8e-3的硬判决前向纠错(HD-FEC)阈值。