论文标题

使用集成的孤子微型群

Ultrafast optical circuit switching for data centers using integrated soliton microcombs

论文作者

Raja, Arslan Sajid, Lange, Sophie, Karpov, Maxim, Shi, Kai, Fu, Xin, Behrendt, Raphael, Cletheroe, Daniel, Lukashchuk, Anton, Haller, Istvan, Karinou, Fotini, Thomsen, Benn, Jozwik, Krzysztof, Liu, Junqiu, Costa, Paolo, Kippenberg, Tobias, Ballani, Hitesh

论文摘要

当前数据中心内部的网络包括通过光纤和收发器互连的渴望渴望的电子数据包开关的层次结构。随着这种电动切换网络的缩放接近平稳,一个效力的解决方案是实现具有光电路开关(OCS)的平坦网络,而没有电子开关,并且由于服务器之间的直接连接而导致的收发器数量减少。实施OC的有前途的方法之一是使用可调激光器和阵列的波导光栅路由器。这样的OCS网络可以提供高带宽和低网络潜伏期,并且光子整合的可能性会导致节能,紧凑且可扩展的光子数据中心网络。为了有效地支持动态数据中心的工作负载,至关重要的是在子纳秒(NS)中的波长之间切换。在这里,我们证明了基于微磅的超快光子电路开关。使用光子积分SI3N4微型尸体与半导体光学放大器(SOAS)结合使用,可实现20多个载体的次ns(<500 ps)切换。此外,显示了25-Gbps的非返回(NRZ)和50 Gbps四级脉冲振幅调制(PAM-4)爆发模式传输系统。此外,基于芯片的磷化物(INP)的SOA和阵列的波导光栅(AWG)用于显示子NS切换以及25 Gbps NRZ爆发模式的传输,从而为未来数据中心提供了通往更可扩展和能效的波长波长的路径。

Networks inside current data centers comprise a hierarchy of power-hungry electronic packet switches interconnected via optical fibers and transceivers. As the scaling of such electrically-switched networks approaches a plateau, a power-efficient solution is to implement a flat network with optical circuit switching (OCS), without electronic switches and a reduced number of transceivers due to direct links among servers. One of the promising ways of implementing OCS is by using tunable lasers and arrayed waveguide grating routers. Such an OCS-network can offer high bandwidth and low network latency, and the possibility of photonic integration results in an energy-efficient, compact, and scalable photonic data center network. To support dynamic data center workloads efficiently, it is critical to switch between wavelengths in sub nanoseconds (ns). Here we demonstrate ultrafast photonic circuit switching based on a microcomb. Using a photonic integrated Si3N4 microcomb in conjunction with semiconductor optical amplifiers (SOAs), sub ns (< 500 ps) switching of more than 20 carriers is achieved. Moreover, the 25-Gbps non-return to zero (NRZ) and 50-Gbps four-level pulse amplitude modulation (PAM-4) burst mode transmission systems are shown. Further, on-chip Indium phosphide (InP) based SOAs and arrayed waveguide grating (AWG) are used to show sub-ns switching along with 25-Gbps NRZ burst mode transmission providing a path toward a more scalable and energy-efficient wavelength-switched network for future data centers.

扫码加入交流群

加入微信交流群

微信交流群二维码

扫码加入学术交流群,获取更多资源