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Nonlinear Light-Matter Interactions in Metamaterials.

机译:超材料中的非线性光物质相互作用。

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摘要

Metamaterials possess extraordinary linear optical properties never observed in natural materials such as a negative refractive index, enabling exciting applications such as super resolution imaging and cloaking. In this thesis, we explore the equally extraordinary nonlinear properties of metamaterials. Nonlinear optics, the study of light-matter interactions where the optical fields are strong enough to change material properties, has fundamental importance to physics, chemistry, and material science as a non-destructive probe of material properties and has important technological applications such as entangled photon generation and frequency conversion. Due to their ability to manipulate both linear and nonlinear light matter interactions through sub-wavelength structuring, metamaterials are a promising direction for both fundamental and applied nonlinear optics research.;We perform the first experiments on nonlinear propagation in bulk zero and negative index optical metamaterials and demonstrate that a zero index material can phase match four wave mixing processes in ways not possible in finite index materials. In addition, we demonstrate the ability of nonlinear scattering theory to describe the geometry dependence of second and third harmonic generation in plasmonic nanostructures. As an application of nonlinear metamaterials, we propose a phase matching technique called "resonant phase matching" to increase the gain and bandwidth of Josephson junction traveling wave parametric amplifiers. With collaborators, we demonstrate a best in class amplifier for superconducting qubit readout---over 20 dB gain with near quantum limited noise performance with a bandwidth and dynamic range an order of magnitude larger than alternative devices. In conclusion, we have demonstrated several ways in which nonlinear metamaterials surpass their natural counterparts. We look forward to the future of the field where nonlinear and quantum metamaterials will enable further new physics and new applications.
机译:超材料具有在自然材料中从未观察到的非凡线性光学特性(例如负折射率),可实现令人兴奋的应用,例如超分辨率成像和隐身术。在本文中,我们探索了超常材料的非同寻常的非线性特性。非线性光学是对光场相互作用的研究,其中的光场足够强大,可以改变材料的性质,作为物理性质的非破坏性探针,对物理,化学和材料科学具有根本的重要性,并且具有重要的技术应用,例如纠缠光子产生和频率转换。由于超材料具有通过亚波长结构同时控制线性和非线性光相互作用的能力,因此是基础和应用非线性光学研究的一个有希望的方向。;我们进行了零体积和负折射率光学超材料中非线性传播的首次实验。并证明零折射率材料可以以有限折射率材料无法实现的方式相位匹配四个波混频过程。此外,我们证明了非线性散射理论具有描述等离子体纳米结构中二次谐波和三次谐波产生的几何相关性的能力。作为非线性超材料的一种应用,我们提出了一种称为“谐振相位匹配”的相位匹配技术,以提高约瑟夫逊结行波参数放大器的增益和带宽。与合作者一起,我们演示了用于超导量子位读出的一流放大器-超过20 dB的增益,具有接近量子限制的噪声性能,其带宽和动态范围比替代器件大一个数量级。总之,我们已经证明了非线性超材料超越其自然对应物的几种方法。我们期待着非线性和量子超材料将推动进一步的新物理和新应用领域的未来。

著录项

  • 作者

    O'Brien, Kevin Patrick.;

  • 作者单位

    University of California, Berkeley.;

  • 授予单位 University of California, Berkeley.;
  • 学科 Optics.
  • 学位 Ph.D.
  • 年度 2016
  • 页码 88 p.
  • 总页数 88
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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