发射机
硅光子学
电子工程
光子学
CMOS芯片
传输(电信)
电光调制器
计算机科学
电气工程
千兆位
调制(音乐)
放大器
正交调幅
光调制器
误码率
电信
工程类
光电子学
物理
频道(广播)
相位调制
相位噪声
声学
作者
Ke Li,David J. Thomson,Shenghao Liu,Weiwei Zhang,Wei Cao,Callum G. Littlejohns,Xingzhao Yan,Martin Ebert,Mehdi Banakar,Dehn Tran,Fanfan Meng,Han Du,Graham T. Reed
标识
DOI:10.1038/s41928-023-01048-1
摘要
Abstract The widening application of advanced digital infrastructure requires the development of communications technologies with increased data transmission rates. However, ensuring that this can be achieved in an energy-efficient way is challenging. Here we report an integrated complementary metal–oxide–semiconductor/silicon-photonics-based transmitter in which a switching current is applied to the passive-equalization-network-guided silicon Mach–Zehnder modulator, rather than driving a standard Mach–Zehnder modulator with a traditional voltage swing. This approach allows the total electrical energy to be selectively distributed to different frequency components by choosing an appropriate inductance and near-end termination impedance values. With the approach, we achieve 112 gigabaud—112 gigabits per second on–off keying and 224 gigabit per second pulse-amplitude modulation with four levels—transmission with energy efficiencies below picojoules per bit, and without the need for signal-shaping functions in the data source. We also investigate the bit error rate for different electrical and optical power conditions at 100 gigabaud, including the electrical power consumption of the driver amplifier.
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