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High Gain 1.3-μm GalnNAs SOA with Fast Gain Dynamics and Enhanced Temperature Stability

机译:高增益1.3μmGalnNAs SOA,具有快速增益动态特性和增强的温度稳定性

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摘要

Semiconductor optical amplifiers (SOAs) are a well-established solution of optical access networks. They could prove an enabling technology for DataCom by offering extended range of active optical functionalities. However, in such cost-and energy-critical applications, high-integration densities increase the operational temperatures and require power-hungry external cooling. Taking a step further towards improving the cost and energy effectiveness of active optical components, we report on the development of a GaInNAs/GaAs (dilute nitride) SOA operating at 1.3μm that exhibits a gain value of 28 dB and combined with excellent temperature stability owing to the large conduction band offset between GaInNAs quantum well and GaAs barrier. Moreover, the characterization results reveal almost no gain variation around the 1320 nm region for a temperature range from 20° to 50℃. The gain recovery time attained values as short as 100 ps, allowing implementation of various signal processing functionalities at 10 Gb/s. The combined parameters are very attractive for application in photonic integrated circuits requiring uncooled operation and thus minimizing power consumption. Moreover, as a result of the insensitivity to heating issues, a higher number of active elements can be integrated on chip-scale circuitry, allowing for higher integration densities and more complex optical on-chip functions. Such component could prove essential for next generation DataCom networks.
机译:半导体光放大器(SOA)是一种完善的光接入网络解决方案。他们可以通过提供广泛的有源光学功能来证明DataCom的一项启用技术。但是,在此类对成本和能源至关重要的应用中,高集成度会提高工作温度,并需要耗电的外部冷却。为了进一步提高有源光学组件的成本和能源效率,我们报告了GaInNAs / GaAs(氮化稀)SOA的开发,该SOA工作于1.3μm,增益值为28 dB,并具有出色的温度稳定性。到GaInNAs量子阱和GaAs势垒之间的大导带偏移。此外,表征结果表明,在20°至50℃的温度范围内,在1320 nm区域附近几乎没有增益变化。增益恢复时间达到的值短至100 ps,从而允许以10 Gb / s的速度实现各种信号处理功能。组合参数对于需要非制冷操作并因此将功耗降至最低的光子集成电路非常有吸引力。此外,由于对加热问题不敏感,可以在芯片级电路上集成更多数量的有源元件,从而实现更高的集成密度和更复杂的光学芯片功能。这样的组件可能被证明对下一代DataCom网络至关重要。

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  • 来源
    《Optical components and materials XI》|2014年|898208.1-898208.6|共6页
  • 会议地点 San Francisco CA(US)
  • 作者单位

    Information Technologies Institute, Center for Research Technology Hellas, 57001, Thessaloniki,Greece,Dept. of Informatics, Aristotle University of Thessaloniki, 54124, Thessaloniki, Greece;

    School of Electrical and Computer Engineering, National Technical University of Athens, Greece;

    School of Electrical and Computer Engineering, National Technical University of Athens, Greece;

    Optoelectronics Research Centre (ORC), Tampere University of Technology, Finland;

    Optoelectronics Research Centre (ORC), Tampere University of Technology, Finland;

    Optoelectronics Research Centre (ORC), Tampere University of Technology, Finland;

    School of Electrical and Computer Engineering, National Technical University of Athens, Greece;

    School of Electrical and Computer Engineering, National Technical University of Athens, Greece;

    School of Electrical and Computer Engineering, National Technical University of Athens, Greece;

    Information Technologies Institute, Center for Research Technology Hellas, 57001, Thessaloniki,Greece;

    Information Technologies Institute, Center for Research Technology Hellas, 57001, Thessaloniki,Greece,Dept. of Informatics, Aristotle University of Thessaloniki, 54124, Thessaloniki, Greece;

    Optoelectronics Research Centre (ORC), Tampere University of Technology, Finland;

  • 会议组织
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Semiconductor Optical Amplifier (SOA); Dilute Nitrides; Temperature Stability; Optical Signal Processing; Uncooled Operation; Fast Gain Recovery;

    机译:半导体光放大器(SOA);稀氮化物;温度稳定性;光信号处理;非制冷运行;快速增益恢复;

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