基于多电平信号的片上光子网络结构中VBTI老化对能量的影响

Ishan G. Thakkar, S. Pasricha
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引用次数: 3

摘要

光子片上网络(PNoCs)可以实现更高带宽和更低延迟的光速数据传输。这种pnoc由用于信号穿越的具有密集波分复用(DWDM)的光子波导和用于信号调制和接收的微环谐振器(MRs)组成。为了使MRs调制和接收DWDM光子信号,必须通过其电压偏置改变MRs的自由载流子浓度或工作温度。但在恒定或时变温度和电压偏置的情况下,MRs长期运行会导致老化。这种电压偏置和温度诱导(VBTI)老化会导致器件级的共振波长漂移和q因子退化,进而加剧光子链路级的三个关键频谱效应,即互调串扰、外差串扰和信号旁瓣截断。这些不利的频谱效应最终会增加pnoc中的信号功率衰减和每比特能量。我们对光子链路的频域分析表明,使用四脉冲调幅(4-PAM)信号代替传统的开关键控(OOK)信号可以主动减少由VBTI老化引起的频谱效应引起的信号衰减。我们的系统级评价结果表明,与未老化的OOK pnoc相比,4-PAM pnoc在经过VBTI老化3年后的能效提高了5.5%。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Mitigating the Energy Impacts of VBTI Aging in Photonic Networks-on-Chip Architectures with Multilevel Signaling
Photonic networks-on-chip (PNoCs) can enable higher bandwidth and lower latency data transfers at the speed of light. Such PNoCs consist of photonic waveguides with dense-wavelength-division-multiplexing (DWDM) for signal traversal and microring resonators (MRs) for signal modulation and reception. To enable MRs to modulate and receive DWDM photonic signals, change in the free-carrier concentration in or operating temperature of MRs through their voltage biasing is essential. But long-term operation of MRs with constant or time-varying temperature and voltage biasing causes aging. Such voltage bias and temperature induced (VBTI) aging in MRs leads to resonance wavelength drifts and Q-factor degradation at the device-level, which in turn exacerbates three key spectral effects at the photonic link level, namely the intermodulation crosstalk, heterodyne crosstalk, and signal sidelobes truncation. These adverse spectral effects ultimately increase signal power attenuation and energy-per-bit in PNoCs. Our frequency-domain analysis of photonic links shows that the use of the four pulse amplitude modulation (4-PAM) signaling instead of the traditional on-off keying (OOK) signaling can proactively reduce signal attenuation caused by the VBTI aging induced spectral effects. Our system-level evaluation results indicate that, compared to OOK based PNoCs with no aging, 4-PAM based PNoCs can achieve 5.5% better energy-efficiency even after undergoing VBTI aging for 3 Years.
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