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Parity measurements in optical interferometry and tests of quantum mechanics.

机译:光学干涉测量中的奇偶校验测量和量子力学测试。

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We study the use of parity in context of high resolution interferometry. Maximally entangled states play a crucial role in the applications of the Heisenberg-limited interferometry; it enhances the sensitivity of the detection of the gravitational waves. Interferometry with maximally entangled states cannot be performed by simply subtracting the output photocounts as in standard quantum interferometry. Instead, one must perform parity measurements on only one of the output beams. We use the same technique to show that with twin Fock input states in a Mach-Zehnder interferometer, the phase sensitivity approaches the Heisenberg limit for large photon number. Then we study the generations of maximally entangled states and states of superposition of maximally entangled states using nonlinear interferometry. Nonlinear interferometers are Mach-Zehnder interferometers with Kerr media in either one or both arms. We refer to these devices, respectively, as the asymmetric and symmetric nonlinear interferometers. In the asymmetric case, with one input mode in the vacuum, it is possible to generate maximally entangled states or superpositions of such states. We consider the device as a resource of entangled states for applications to Heisenberg-limited interferometry. We also consider the nonlinear four-wave mixer as a resource for superpositions of only even input states. Considering both even coherent states and squeezed vacuum states as inputs; we study their applications to high resolution interferometry.; We then study parity measurements. We show that the symmetric nonlinear interferometer, with the vacuum state in one input mode, may be used to perform parity measurements. The same device is shown to produce, with an input coherent state and upon projective measurements, even or odd coherent states, examples of the Schrodinger cat states. We also study quantum non-demolition parity measurements using cross-Kerr medium. We show that one can determine parity of a state without destroying it, using cross-Kerr medium along with homodying measurements. With the same technique we can construct some Schrodinger cat states.; We also study parity measurements to test quantum mechanics against the local realistic theories. To that end, we propose an optical realization of the Greenberger, Horne, Zeilinger (GHZ) state. The optical GHZ states in this case are three-mode entangled coherent states and the relevant observable used to perform test of quantum mechanics against local realistic theories is photon number parity. The amplitudes of the coherent states need by maccoscopic if significant losses are involved by may be macroscopic if losses are minimal. We propose a method of generating the required GHZ state that amounts to an extension of a proposal previously discussed by C. C. Gerry (Phys. Rev A 59, 4095 (1999)) for generating macroscopic superposition states of traveling wave fields.
机译:我们研究在高分辨率干涉仪中使用奇偶校验。最大纠缠态在海森堡有限干涉仪的应用中起着至关重要的作用。它增强了重力波检测的灵敏度。具有最大纠缠态的干涉仪无法像标准量子干涉仪那样简单地减去输出光子计数来执行。取而代之的是,必须仅对其中一个输出光束执行奇偶校验测量。我们使用相同的技术来证明,在Mach-Zehnder干涉仪中使用双Fock输入状态时,对于大光子数,相位灵敏度接近Heisenberg极限。然后,我们利用非线性干涉技术研究了最大纠缠态的产生和最大纠缠态的叠加态。非线性干涉仪是马赫曾德尔干涉仪,其臂的一臂或两臂都装有Kerr介质。我们分别将这些设备称为非对称和对称非线性干涉仪。在非对称情况下,在真空中具有一种输入模式的情况下,可能会产生最大的纠缠状态或这种状态的叠加。我们将设备视为纠缠状态的资源,适用于海森堡有限干涉仪。我们还将非线性四波混频器视为仅偶数输入状态叠加的资源。同时考虑相干态和压缩真空态作为输入;我们研究了它们在高分辨率干涉仪中的应用。然后,我们研究奇偶校验度量。我们表明,在一种输入模式下具有真空状态的对称非线性干涉仪可用于执行奇偶校验测量。示出了相同的设备产生具有输入相干状态并且在投影测量时产生偶数或奇数相干状态的薛定inger猫状态的示例。我们还研究了使用跨Keer介质的量子不可拆卸奇偶性测量。我们证明,使用跨Kerr介质和均一的测量结果可以确定状态的奇偶性而不会破坏状态。使用相同的技术,我们可以构造一些薛定inger猫状态。我们还研究了奇偶校验测量,以根据当地的现实理论测试量子力学。为此,我们提出了Greenberger,Horne,Zeilinger(GHZ)状态的光学实现。在这种情况下,光学GHZ状态是三模纠缠相干态,相对于局部实际理论,用于进行量子力学测试的相关可观察物是光子数量奇偶性。如果涉及显着的损耗,则用显微镜观察相干态的幅度,如果损耗很小,则可能是宏观的。我们提出了一种生成所需GHZ状态的方法,该方法相当于先前由C.C.Gerry(Phys。Rev A 59,4095(1999))讨论的用于生成行波场的宏观叠加状态的提议的扩展。

著录项

  • 作者

    Benmoussa, Adil.;

  • 作者单位

    City University of New York.;

  • 授予单位 City University of New York.;
  • 学科 Physics Optics.
  • 学位 Ph.D.
  • 年度 2005
  • 页码 103 p.
  • 总页数 103
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 光学;
  • 关键词

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