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Ultrafast Nonlinear and Strong-Field Phenomena in Silicon-based Nanoplasmonic Waveguides.

机译:硅基纳米等离子波导管中的超快非线性和强场现象。

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摘要

This thesis presents the realization and characterization of passive and active photonic and nanoplasmonic waveguides for applications in all-optical circuitry. The key results focus on generating visible light in nanoscale silicon waveguides through nonlinear interactions and demonstrating ultrafast all-optical modulation through nonlinear loss mechanisms.;Measurements of the passive performance of silicon-based nanoplasmonic waveguides revealed a propagation length of 2.0 mum at lambda=1550nm and a coupling efficiency of 38% to silicon photonic waveguides. The concepts of nonlinear light generation and ultrafast modulation are then applied to sub-wavelength silicon-based nanoplasmonic waveguides. Third-harmonic generation with conversion efficiencies up to 2.3x10--5 is demonstrated in a nanoplasmonic waveguide with a footprint of 0.43mum2. Accurate investigations of ultrafast nonlinear interactions in silicon-based nanoplasmonic waveguides integrated onto a macroscopic characterization beam are performed using pump-probe time-domain measurements.;Ponderomotive acceleration of two-photon absorption-generated free-carriers in silicon-based nanoplasmonic waveguides is examined and it is demonstrated that electrons can be accelerated to energies exceeding the threshold for impact ionization. Measurements reveal that the highly confined nanoplasmonic field drives an electron avalanche, and white light emission resulting from the avalanche is observed to scale exponentially with the input power. The electron avalanche effectively sweeps free-carriers from the nanoplasmonic waveguide on a timescale of ~2ps, allowing for a reduction in the free-carrier recovery time by more than two orders of magnitude compared to silicon photonic waveguides.;Nanofabrication processes are developed to interface silicon photonic waveguides and silicon-based nanoplasmonic waveguides, along with a technique to integrate nanoplasmonic waveguides onto a macroscopic characterization beam. Passive propagation and nonlinear interactions are investigated in silicon-on-insulator photonic waveguides to provide a detailed understanding of nonlinear interactions present in silicon at lambda=1550nm and the relevant timescales of the interactions. Extensive investigations into third-harmonic generation in silicon photonic waveguides are performed, and conversion efficiencies up to 2.8x10 --5 are measured.
机译:本文介绍了用于全光电路的无源和有源光子和纳米等离子体波导的实现和特性。关键结果集中在通过非线性相互作用在纳米级硅波导中产生可见光,并通过非线性损耗机制证明超快全光调制。通过对硅基纳米等离子体波导的无源性能进行测量,发现在λ= 1550nm处的传播长度为2.0微米。与硅光子波导的耦合效率为38%。然后将非线性光产生和超快调制的概念应用于亚波长硅基纳米等离子体波导。在占地为0.43mum2的纳米等离子体波导中证明了具有高达2.3x10--5的转换效率的三次谐波产生。使用泵浦探针时域测量对集成到宏观表征光束中的硅基纳米等离子体波导管中的超快非线性相互作用进行了精确的研究;检验了硅基纳米等离子体波导管中双光子吸收产生的自由载流子的透动力并且证明了电子可以被加速到超过碰撞电离阈值的能量。测量表明,高度受限的纳米等离子体场驱动了电子雪崩,并且观察到由雪崩引起的白光发射与输入功率成指数比例变化。电子雪崩在约2ps的时间尺度上有效地清除了纳米等离子体波导中的自由载流子,与硅光子波导相比,可将自由载流子的恢复时间减少了两个数量级以上;开发了纳米制造工艺来实现界面交互硅光子波导和基于硅的纳米等离子体波导,以及将纳米等离子体波导集成到宏观表征光束上的技术。在绝缘体上硅光子波导中研究了无源传播和非线性相互作用,以详细了解存在于λ为1550nm的硅中的非线性相互作用以及相关的相互作用时标。对硅光子波导中的三次谐波产生进行了广泛的研究,并测量了高达2.8x10 --5的转换效率。

著录项

  • 作者单位

    University of Alberta (Canada).;

  • 授予单位 University of Alberta (Canada).;
  • 学科 Electrical engineering.;Computer engineering.
  • 学位 Ph.D.
  • 年度 2014
  • 页码 308 p.
  • 总页数 308
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 老年病学;
  • 关键词

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