论文标题
用于相干数据中心互连的模拟信号处理EIC PIC解决方案
An Analog Signal Processing EIC-PIC Solution for Coherent Data Center Interconnects
论文作者
论文摘要
数据中心互连(DCIS)必须在不久的将来支持每次波长400 Gbps或更多的吞吐量。为了达到如此高的数据速率,使用了连贯的调制和检测,从传统上讲,这需要数字域中的高速数据转换和信号处理。或者,可以在光学和电子模拟域中分别在共同设计的光子和电子集成电路中进行高速信号调节和处理,以实现降低功耗,延迟,外形效果,成本和成本。模拟域处理电子集成电路(EIC)的一些演示,包括均衡器和载体相恢复(CPR)模块的模拟域,在文献中显示了这个方向的进展。在此简介中,我们首次提出了与CPR模块的硅光子积分相干接收器(ICR)模块的整合,作为完整相干接收器解决方案的一部分。 ICR中的相位变速器(用220 nm硅在绝缘子技术中制造)从CPR EIC接收反馈,并且该组合补偿了在封闭环配置中调制信号和未调制载体之间的时间变化的时间偏移。在此概念验证演示中,我们提出了从独立硅光子ICR获得的实验结果,以及其与CPR芯片的系统水平集成QPSK信号。该技术可以扩展到高阶调制格式,例如16-QAM,以进行数据速率缩放。所提出的方案适用于同源系统,例如基于极化多路复用载体的自同性恋链接。
Data center interconnects (DCIs) will have to support throughputs of 400 Gbps or more per wavelength in the near future. To achieve such high data rates, coherent modulation and detection is used, which conventionally requires high-speed data conversion and signal processing in the digital domain. Alternatively, high-speed signal conditioning and processing could be carried out in co-designed photonic and electronic integrated circuits, in the optical and electrical analog domains, respectively, to achieve reduced power consumption, latency, form factor, and cost. A few demonstrations of analog domain processing electronic integrated circuits (EICs), including those of equalizer and carrier phase recovery (CPR) modules showcase progress in this direction in the literature. In this brief, for the first time, we present integration of a silicon photonic integrated coherent receiver (ICR) module with a CPR module, as a part of a complete coherent receiver solution. A phase shifter in the ICR (fabricated in a 220 nm silicon-on-insulator technology) receives feedback from a CPR EIC, and the combination compensates for the time varying phase offset between the modulated signal and the unmodulated carrier in the closed loop configuration. In this proof-of-concept demonstration, we present experimental results obtained from the stand-alone silicon photonic ICR along with its system level integration with CPR chip, for QPSK signals. The technique can be extended to a higher-order modulation format, such as 16-QAM, for data rate scaling. The proposed scheme is suitable for homodyne systems, such as polarization multiplexed carrier based self-homodyne links.