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Simultaneous transmission of clock and data signals in photonic-assisted WDM passive optical networks

机译:光子辅助WDM无源光网络中的时钟和数据信号同时传输

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This work reports on the use of a gain-switched vertical cavity surface-emitting laser (VCSEL) optical frequency comb (OFC) to generate multiple optical carriers for applications in future wavelength-division multiplexing (WDM) passive optical network (PON) systems. The VCSEL-based OFC system was tested for its ability to simultaneously transmit error-free data signals up to 30 Gbps, and a 50 MHz clock signal proposed to be used for latency monitoring of the network. The system was demonstrated over a fiber distance beyond 20 km. Four optical carrier signals were filtered from the generated OFC. Three of the four optical carriers were combined and amplitude-modulated with 5 and 10 Gbps on-off keying (OOK) data signals. The fourth optical carrier was amplitude-modulated with a 50 MHz dock signal. These four modulated optical carriers were multiplexed and transmitted over 21 km of standard single-mode fiber. When the three data-carrying optical carriers were modulated with 5 Gbps OOK data and multiplexed with the clock-carrying carrier, a negligible transmission penalty was achieved after fiber transmission. When these three data-carrying optical carriers were modulated with 10 Gbps OOK data and multiplexed with a clock-carrying carrier, a maximum transmission penalty of 4.8 dB was achieved after fiber transmission. The system was investigated at a minim bit error rate (BER) of 10(-9). A receiver sensitivity of less than -11 dBm was achieved at both bit rates. The clock signal suffered little effect when transmitted with the three optical carriers at both 5 and 10 Gbps data rate. A power penalty of 15.37 dB, mainly due to fiber attenuation, was experienced in the clock after fiber transmission. Due to the unavailability of the numerical system to quantify the clock performance in terms of phase noise, the phase-noise results could not be provided. Nevertheless, the provided qualitative results were able to show that the transmitted clock integrity was able to be retained after being multiplexed with transmission on the 21 km fiber channel. For the first time, to the best of our knowledge, we have simultaneously reported on data and clock transmission results using a low-power, VCSEL-based OFC to realize a WDM-PON system. These results are attractive as they demonstrate and motivate the possibility of using gain-switched VCSELs as OFC sources in future WDM-PON networks requiring enhanced channel capacity and stringent network latency monitoring to realize intelligent, simple, and power-efficient PON networks. (C) 2021 Optical Society of America
机译:本文报道了利用增益开关垂直腔面发射激光器(VCSEL)光频梳(OFC)产生多个光载波,用于未来波分复用(WDM)无源光网络(PON)系统。测试了基于VCSEL的OFC系统同时传输高达30 Gbps的无差错数据信号的能力,以及用于网络延迟监控的50 MHz时钟信号。该系统在超过20公里的光纤距离上进行了演示。从生成的OFC中过滤出四个光载波信号。四个光载波中的三个用5和10 Gbps开关键控(OOK)数据信号进行组合和振幅调制。第四个光载波使用50 MHz的dock信号进行振幅调制。这四个调制光载波被多路复用并传输超过21km的标准单模光纤。当使用5 Gbps OOK数据对三个数据承载光载波进行调制并与时钟承载载波进行多路复用时,光纤传输后的传输损耗可以忽略不计。当使用10 Gbps OOK数据对这三个数据承载光载波进行调制,并与时钟承载载波进行多路复用时,光纤传输后的最大传输损耗为4.8 dB。该系统在最小误码率(BER)为10(-9)的情况下进行了研究。在两种比特率下,接收机灵敏度均小于-11 dBm。当以5和10 Gbps数据速率使用三个光载波传输时,时钟信号几乎没有受到影响。在光纤传输后的时钟中,功率损失为15.37 dB,主要是由于光纤衰减。由于数字系统无法根据相位噪声量化时钟性能,因此无法提供相位噪声结果。然而,所提供的定性结果能够表明,在与21km光纤信道上的传输进行多路复用后,传输的时钟完整性能够保持。据我们所知,这是第一次,我们使用基于VCSEL的低功耗OFC同时报告了数据和时钟传输结果,以实现WDM-PON系统。这些结果很有吸引力,因为它们证明并激发了在未来的WDM-PON网络中使用增益开关VCSEL作为OFC源的可能性,需要增强信道容量和严格的网络延迟监控,以实现智能、简单和节能的PON网络。(2021)美国光学学会

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