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112 Gb/s Sub-Cycle 16-QAM Nyquist-SCM for Intra-Datacenter Connectivity

机译:数据中心内连接的112 Gb / s子周期16-QAM Nyquist-SCM

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Datacenter traffic is exploding. Ongoing advancements in network infrastructure that ride on Moore's law are unable to keep up, necessitating the introduction of multiplexing and advanced modulation formats for optical interconnects in order to overcome bandwidth limitations, and scale lane speeds with energy- and cost-efficiency to 100 Gb/s and beyond. While the jury is still out as to how this will be achieved, schemes relying on intensity modulation with direct detection (IM/DD) are regarded as particularly attractive, due to their inherent implementation simplicity. Moreover, the scaling-out of datacenters calls for longer transmission reach exceeding 300 m, requiring single-mode solutions. In this work we advocate using 16-QAM sub-cycle Nyquist-SCM as a simpler alternative to discrete multitone (DMT), but which is still more bandwidth-efficient than PAM-4. The proposed optical interconnect is demonstrated at 112 Gb/s, which, to the best of our knowledge, is the highest rate achieved in a single-polarization implementation of SCM. Off-the-shelf components are used: A DFB laser, a 24.3 GHz electro-absorption modulator (EAM) and a limiting photoreceiver, combined with equalization through digital signal processing (DSP) at the receiver. The EAM is driven by a low-swing (<1 V) arbitrary waveform generator (AWG), which produces a 28 Gbaud 16-QAM electrical signal with carrier frequency at ~15 GHz. Tight spectral shaping is leveraged as a means of maintaining signal fidelity when using low-bandwidth electro-optic components; matched root-raised-cosine transmit and receive filters with 0.1 excess bandwidth are thus employed. Performance is assessed through transmission experiments over 1250 m and 2000 m of SMF.
机译:数据中心流量呈爆炸式增长。依靠摩尔定律的网络基础设施的持续发展无法跟上发展,因此必须为光互连引入多路复用和先进的调制格式,以克服带宽限制,并在能源和成本效益上将通道速度扩展到100 Gb / s及以后。尽管尚不清楚如何实现此目标,但依赖于直接检测强度调制(IM / DD)的方案由于其固有的实现简单性而被认为特别具有吸引力。此外,数据中心的横向扩展要求更长的传输距离超过300 m,这需要单模解决方案。在这项工作中,我们提倡使用16-QAM子周期Nyquist-SCM作为离散多音(DMT)的更简单替代方案,但它仍然比PAM-4具有更高的带宽效率。据我们所知,所提议的光互连以112 Gb / s的速度进行了演示,这是SCM单极化实现中实现的最高速率。使用现成的组件:DFB激光器,24.3 GHz电吸收调制器(EAM)和有限的光接收器,并通过接收器的数字信号处理(DSP)进行均衡。 EAM由低摆幅(<1 V)任意波形发生器(AWG)驱动,该发生器会产生28 Gbaud 16-QAM电信号,载波频率约为15 GHz。当使用低带宽电光组件时,紧密频谱整形可作为保持信号保真度的一种手段;因此,采用了带宽超过0.1的匹配根上升余弦发射和接收滤波器。通过在1250 m和2000 m的SMF上进行传输实验来评估性能。

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