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Monolithically integrated quantum dot optical gain modulator with semiconductor optical amplifier for 10-Gb/s photonic transmission

机译:具有半导体光放大器的单片集成量子点光增益调制器,用于10 Gb / s光子传输

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摘要

Short-range interconnection and/or data center networks require high capacity and a large number of channels in order to support numerous connections. Solutions employed to meet these requirements involve the use of alternative wavebands to increase the usable optical frequency range. We recently proposed the use of the T- and O-bands (Thousand band: 1000-1260 nm, Original band: 1260-1360 nm) as alternative wavebands because large optical frequency resources (>60 THz) can be easily employed. In addition, a simple and compact Gb/s-order high-speed optical modulator is a critical photonic device for short-range communications. Therefore, to develop an optical modulator that acts as a high-functional photonic device, we focused on the use of self-assembled quantum dots (QDs) as a three-dimensional (3D) confined structure because QD structures are highly suitable for realizing broadband optical gain media in the T+O bands. In this study, we use the high-quality broadband QD optical gain to develop a monolithically integrated QD optical gain modulator (QD-OGM) device that has a semiconductor optical amplifier (QD-SOA) for Gb/s-order highspeed optical data generation in the 1.3-μm waveband. The insertion loss of the device can be compensated through the SOA, and we obtained an optical gain change of up to ~7 dB in the OGM section. Further, we successfully demonstrate a 10-Gb/s clear eye opening using the QD-OGM/SOA device with a clock-data recovery sequence at the receiver end. These results suggest that the monolithic QD-EOM/SOA is suitable for increasing the number of wavelength channels for smart short-range communications.
机译:短程互连和/或数据中心网络需要高容量和大量通道,以支持众多连接。为满足这些要求而采用的解决方案包括使用替代波段来增加可用的光学频率范围。我们最近提议使用T波段和O波段(千波段:1000-1260 nm,原始波段:1260-1360 nm)作为替代波段,因为可以轻松利用大的光学频率资源(> 60 THz)。此外,简单紧凑的Gb / s级高速光调制器是用于短距离通信的关键光子设备。因此,为了开发用作高性能光子器件的光调制器,我们专注于将自组装量子点(QD)用作三维(3D)受限结构,因为QD结构非常适合实现宽带T + O波段中的光学增益介质。在这项研究中,我们使用高质量的宽带QD光增益来开发单片集成QD光增益调制器(QD-OGM)器件,该器件具有用于Gb / s级高速光数据生成的半导体光放大器(QD-SOA)。在1.3μm波段器件的插入损耗可以通过SOA补偿,我们在OGM部分获得的光学增益变化高达〜7 dB。此外,我们成功地演示了使用QD-OGM / SOA设备以在接收器端具有时钟数据恢复序列的10 Gb / s的清晰眼图。这些结果表明,单片QD-EOM / SOA适用于增加用于智能短距离通信的波长信道的数量。

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