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Very-low-power and footprint integrated photonic modulators and switches for ICT

机译:ICT的超低功耗和占板面积集成光子调制器和开关

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摘要

The current development in photonics for communications and interconnects pose increasing requirements on reduction of footprint, power dissipation and cost, as well as increased bandwidth. Integrated nanophotonics has been viewed as one solution to this, capitalizing on development in nanotechnology as such as well as on increased insights into light matter interaction on the nanoscale. The latter can be exemplified by plasmonics and low-dimensional semiconductors such as quantum dots (QDs). In this scenario the development of better electrooptic materials is also of great importance, the electrooptic polymers being an example, since they potentially offer improved properties for optical phase modulators in terms of power and probably cost and general flexibility. Phase modulators are essential for e.g. the rapidly developing advanced modulation formats for telecom, since phase modulation basically can generate any type of modulation. The electrooptic polymers, e.g. in combination with plasmonics nanoparticle array waveguides or nanostructured hybrid plasmonic media can theoretically give extremely compact and low power dissipation modulators, still to be demonstrated. The low-dimensional semiconductors, e.g. in the shape of QDs, can be employed for modulation or switching functions, offering possibilities in the future for scaling to 2 or 3 dimensions for advanced switching functions. In both the plasmonics and QD cases, nanosizing and low power dissipation are generally due to near-field interactions, albeit being of different physical origin in the two cases. A comparison of all-optical and electronically controlled switching is given.
机译:用于通信和互连的光子学的当前发展提出了对减少覆盖区,功耗和成本以及增加带宽的要求。集成纳米光子学已被视为解决此问题的一种方法,它利用了纳米技术的发展以及对纳米级光物质相互作用的深入了解。后者可以由等离子和低维半导体,例如量子点(QD)来举例说明。在这种情况下,开发更好的电光材料也非常重要,电光聚合物就是一个例子,因为它们有可能在功率,成本和总体灵活性方面为光学相位调制器提供改进的性能。相位调制器对于例如快速发展的电信高级调制格式,因为相位调制基本上可以生成任何类型的调制。电光聚合物例如与等离激元纳米粒子阵列波导或纳米结构混合等离激元介质结合使用,理论上可以提供极其紧凑和低功耗的调制器,尚待证实。低维半导体,例如可以将QD形式的QD用作调制或开关功能,将来有可能将其缩放到2或3维,以实现高级开关功能。在等离子和QD情况下,纳米尺寸和低功耗通常是由于近场相互作用引起的,尽管在两种情况下其物理起源不同。给出了全光和电子控制开关的比较。

著录项

  • 来源
    《Optoelectronic integrated circuits XV》|2013年|862805.1-862805.10|共10页
  • 会议地点 San Francisco CA(US)
  • 作者单位

    Laboratory of Photonics and Microwave Engineering, Royal Institute of Technology (KTH), SE-164 40 Kista, Sweden,Hewlett-Packard Laboratories, Palo Alto, California 94304, USA,Joint Research Center of Photonics of the Royal Institute of Technology (KTH) and Zhejiang University,Zhejiang University, Hangzhou 310058, China;

    Laboratory of Photonics and Microwave Engineering, Royal Institute of Technology (KTH), SE-164 40 Kista, Sweden;

    Laboratory of Photonics and Microwave Engineering, Royal Institute of Technology (KTH), SE-164 40 Kista, Sweden,Joint Research Center of Photonics of the Royal Institute of Technology (KTH) and Zhejiang University,Zhejiang University, Hangzhou 310058, China;

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

    Nanophotonics; low-power photonics; optical switch; all-optical switch; electro-optic polymer; plasmonics; near-field-coupled quantum dots; silicon photonics;

    机译:纳米光子学低功率光子学;光学开关全光开关;电光聚合物等离子体近场耦合量子点硅光子学;

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