正交调幅
硅光子学
卡姆
波特
光子学
带宽(计算)
物理
调制(音乐)
光学
传输(电信)
电子工程
计算机科学
相位调制
误码率
电信
相位噪声
工程类
解码方法
声学
作者
Hassan Sepehrian,Jiachuan Lin,Leslie A. Rusch,Wei Shi
标识
DOI:10.1109/jlt.2019.2910491
摘要
Silicon photonics has enormous potential for ultrahigh-capacity coherent optical transceivers. We demonstrate an in-phase and quadrature (IQ) modulator using silicon photonic traveling-wave modulators optimized for higher order quadrature amplitude modulation (QAM). Its optical and RF characteristics are studied thoroughly in simulation and experiment. We propose a system-orientated approach to optimization of the silicon photonic IQ modulator, which minimizes modulator-induced power penalty in a QAM transmission link. We examine the tradeoff between modulation efficiency and bandwidth for the optimal combination of modulator length and bias voltage to maximize the clear distance between adjacent constellation points. This optimum depends on baud rate and modulation format, as well as achievable driving voltage swing. Measured results confirm our prediction using the proposed methodology. Without precompensating bandwidth limitation of the modulator, net data rates up to 232 Gb/s (70 Gbaud 16-QAM) on single polarization are captured, indicating great potential for 400+ Gb/s dual-polarization transmission.
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