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Semiconductor nanowires: From photonic devices to photonic circuits.

机译:半导体纳米线:从光子设备到光子电路。

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The ability to inject, guide, and manipulate light on a subwavelength scale using nanowire components that can be assembled into integrated structures represents a promising pathway towards integrated nanoscale photonic systems. This thesis focuses on light-matter interaction at the single nanowire level and presents key advances in nanowire photonic devices for photonic circuits.; Cadmium sulfide (CdS) semiconductor nanowires are grown using single-source precursors via a nanocluster catalyzed vapor-liquid-solid growth process. CdS nanowires are of interest for photonic applications because they provide high quantum efficiency, a large refractive index, and a large nonlinear coefficient (chi2). The optical properties and lasing mechanism of US nanowires are studied using photoluminescence imaging and spectroscopy.; Light is optically or electrically injected locally into nanowire waveguides. The waveguiding properties are characterized along straight and bent nanowire segments, showing low loss even at sharp bends. In addition, nanowires are integrated into electro-optic modulators to switch optical signals with an applied electric field.; A hybrid approach for photonic systems is presented. This approach combines chemically synthesized single nanowire emitters with lithographically defined photonic crystal and racetrack microresonator structures. The hybrid nanowire structures offer a simple and effective way to couple light into and out of the nanowire.; Finally, semiconductor nanowires are used for nonlinear mixing in a subwavelength waveguide. Second-harmonic generation and optical parametric generation are experimentally measured. A theoretical framework is developed to understand nonlinear processes in a subwavelength waveguide and the importance of the coherence length. The ability to efficiently generate and waveguide nonlinear signals offers new opportunities for coherent all-optical switching in integrated nanoscale photonic systems.
机译:使用可以组装成集成结构的纳米线组件,可以在亚波长范围内注入,引导和操纵光,这是通往集成纳米级光子系统的有前途的途径。本文着重于单纳米线水平的光-质相互作用,并提出了用于光子电路的纳米线光子器件的关键进展。硫化镉(CdS)半导体纳米线是使用单源前驱物通过纳米簇催化的气液固生长工艺生长的。 CdS纳米线对光子应用很感兴趣,因为它们提供高量子效率,大折射率和大非线性系数(chi2)。使用光致发光成像和光谱学研究了美国纳米线的光学性质和激射机理。将光局部地光学或电注入纳米线波导中。沿着直线和弯曲的纳米线段表征了波导特性,即使在急剧弯曲时也显示出低损耗。另外,纳米线被集成到电光调制器中,以在施加电场的情况下切换光信号。提出了一种用于光子系统的混合方法。这种方法将化学合成的单纳米线发射器与光刻定义的光子晶体和跑道微谐振器结构结合在一起。混合纳米线结构提供了一种简单有效的方式将光耦合进出纳米线。最后,半导体纳米线用于亚波长波导中的非线性混合。通过实验测量了二次谐波的产生和光学参数的产生。建立了一个理论框架来理解亚波长波导中的非线性过程以及相干长度的重要性。有效地产生和传播非线性信号的能力为集成纳米级光子系统中的相干全光切换提供了新的机会。

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