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首页> 外文期刊>Bell Labs technical journal >Nanophotonics—Quantum Dots, Photonic Crystals, and Optical Silicon Circuits: An Excursion into the Optical Behavior of Very Small Things
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Nanophotonics—Quantum Dots, Photonic Crystals, and Optical Silicon Circuits: An Excursion into the Optical Behavior of Very Small Things

机译:纳米光子学—量子点,光子晶体和光学硅电路:对非常小的事物的光学行为的考察

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This paper covers four specific areas—diverse in their scope and approach— of nanophotonics research at Bell Labs, ranging from nanosized light emitters to passive and active optical circuits fabricated or actuated with nanometer precision. Our first example involves the dynamics of carriers confined in quantum dots fabricated via self-assembly on semiconducting substrates; we show that the evolution of carrier populations is a result of the interplay of interactions between photons, phonons, electrons, and holes. A second example involves a nanosize light-emitting quantum dot system that is fabricated by embedding passivated spherical semiconducting quantum dots in a polymer matrix; the fabrication steps and subsequent optical measurements, including the observation of net optical gain in this system, are described. In the area of passive and active optical circuits, we report on efforts to optimize the transmission efficiencies of photonic crystal circuit-building elements (e.g., waveguide bends and waveguide tapers in passive two-dimensional photonic crystal circuits). Finally, we describe active optical silicon circuits fabricated on a silicon-on-insulator platform; these devices comprise waveguide interferometers and electrostatically actuated piston micromirrors, and they require nanometer-size displacements to function as optical switches with inherently low power consumption.
机译:本文涵盖了贝尔实验室纳米光子学研究的四个特定领域(范围和方法各异),从纳米级发光体到以纳米级精度制造或驱动的无源和有源光学电路。我们的第一个例子涉及载流子的动力学,该载流子是通过在半导体衬底上自组装而制造的量子点。我们表明,载流子种群的演化是光子,声子,电子和空穴之间相互作用相互作用的结果。第二个示例涉及纳米尺寸的发光量子点系统,该系统是通过将钝化的球形半导体量子点嵌入聚合物基质中制成的;描述了制造步骤和随后的光学测量,包括对该系统净光学增益的观察。在无源和有源光学电路领域,我们报告了为优化光子晶体电路构建元件(例如无源二维光子晶体电路中的波导弯曲和波导锥度)的传输效率所做的努力。最后,我们描述了在绝缘体上硅平台上制造的有源光学硅电路。这些设备包括波导干涉仪和静电驱动的活塞微镜,并且它们需要纳米尺寸的位移才能用作具有固有低功耗的光开关。

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