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Bathed, Strained, Attenuated, Annihilated: Towards Quantum Optomechanics.

机译:沐浴,应变,衰减,An灭:迈向量子光力学。

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摘要

The field of optomechanics studies tiny devices that can be pushed mechanically by light. It is an extremely promising avenue towards tests of quantum mechanics on a macroscopic scale, by transferring quantum states of light to nano- or micromechanical objects. This dissertation concerns a long term research program to create quantum superpositions of a macroscopic mirror in an optomechanical cavity.;This dissertation has two broad thrusts. The first focuses on microfabrication of a new type of device called optomechanical trampoline resonators, consisting of a small mirror on a cross-shaped tensed silicon nitride membrane. Devices have been fabricated with high mechanical and optical quality, including a 300 kHz device with quality factor 480,000, as well as a device of optical finesse 107,000. These devices are well into the sideband-resolved regime and suitable for optical cooling to the quantum ground state. One such device has been optically cooled to approximately 10 phonons.;The second major thrust is theoretical. Creating a macroscopic superposition is a challenging problem, requiring optical cooling to the ground state, strong coupling, extremely high optical finesse and extremely low frequency. A realistic assessment of achievable parameters indicates that it is possible to achieve ground state cooling or strong coupling, but not both. This dissertation proposes a new technique using postselection to achieve macroscopic superpositions with only weak coupling. This relaxes some of the required parameters by orders of magnitude. Prospects for observing hypothetical novel decoherence mechanisms are also discussed.
机译:光力学领域研究可以被光机械推动的微型设备。通过将光的量子态转移到纳米或微机械物体上,这是在宏观尺度上进行量子力学测试的极有希望的途径。本论文涉及一个长期的研究计划,以创建一个光镜腔中的宏观镜的量子叠加。第一部分着眼于一种新型的称为光机械蹦床谐振器的装置的微制造,该装置由十字形张紧的氮化硅膜上的一个小镜组成。已制造出具有高机械和光学质量的设备,包括品质因数为480,000的300 kHz设备以及光学精度为107,000的设备。这些器件很好地进入了边带解析状态,适合于光学冷却至量子基态。一种这样的装置已经被光学冷却到大约10声子。第二个主要推力是理论上的。创建宏观叠加是一个挑战性的问题,需要光学冷却至基态,强耦合,极高的光学精细度和极低的频率。对可实现参数的实际评估表明,可以实现基态冷却或强耦合,但不能同时实现。本文提出了一种利用后选择实现仅具有弱耦合的宏观叠加的新技术。这样可以将一些所需的参数放宽几个数量级。还讨论了观察假设的新型去相干机制的前景。

著录项

  • 作者

    Pepper, Brian Jeffrey.;

  • 作者单位

    University of California, Santa Barbara.;

  • 授予单位 University of California, Santa Barbara.;
  • 学科 Physics Quantum.;Physics Optics.
  • 学位 Ph.D.
  • 年度 2014
  • 页码 216 p.
  • 总页数 216
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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