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Quantum coherence effects in novel quantum optical systems.

机译:新型量子光学系统中的量子相干效应。

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摘要

Optical response of an active medium can substantially be modified when coherent superpositions of states are excited, that is, when systems display quantum coherence and interference. This has led to fascinating applications in atomic and molecular systems. Examples include coherent population trapping, lasing without inversion, electromagnetically induced transparency, cooperative spontaneous emission, and quantum entanglement. We study quantum coherence effects in several quantum optical systems and find interesting applications.;We show that quantum coherence can lead to transient Raman lasing and lasing without inversion in short wavelength spectral regions--extreme ultraviolet and x-ray--without the requirement of incoherent pumping. For example, we demonstrate transient Raman lasing at 58.4 nm in Helium atom and transient lasing without inversion at 6.1 nm in Helium-like Boron (triply-ionized Boron). We also investigate dynamical properties of a collective superradiant state prepared by absorption of a single photon when the size of the sample is larger than the radiation wavelength. We show that for large number of atoms such a state, to a good approximation, decays exponentially with a rate proportional to the number of atoms. We also find that the collective frequency shift resulting from repeated emission and reabsorption of short-lived virtual photons is proportional to the number of species in the sample. Furthermore, we examine how a position-dependent excitation phase affects the evolution of entanglement between two dipole-coupled qubits. It turns out that the coherence induced by position-dependent excitation phase slows down the otherwise fast decay of the two-qubit entanglement. We also show that it is possible to entangle two spatially separated and uncoupled qubits via interaction with correlated photons in a cavity quantum electrodynamics setup. Finally, we analyze how quantum coherence can be used to generate continuous-variable entanglement in quantum-beat lasers in steady state and propose possible implementation in quantum lithography.
机译:当激发态的相干叠加时,即系统显示量子相干和干涉时,可以大大改变活性介质的光学响应。这导致了在原子和分子系统中的引人入胜的应用。例子包括相干的人口陷阱,无反转激光,电磁感应的透明性,协同自发发射和量子纠缠。我们研究了几种量子光学系统中的量子相干效应并找到了有趣的应用;我们证明了量子相干可以导致瞬态拉曼激光和激光在短波长光谱区域(极紫外和X射线)中不发生反转,而无需非相干抽运。例如,我们证明了氦原子中58.4 nm处的瞬态拉曼激射和类氦(三重离子化硼)中6.1 nm处的瞬态激射而没有反转。当样品的尺寸大于辐射波长时,我们还研究了通过吸收单个光子制备的集体超辐射态的动力学性质。我们表明,对于大量原子,这种状态(近似良好)以与原子数成比例的速率呈指数衰减。我们还发现,由短暂发射的虚拟光子的反复发射和重吸收所引起的集体频移与样品中物种的数量成正比。此外,我们研究了与位置有关的激励相位如何影响两个偶极耦合量子位之间纠缠的演化。事实证明,由位置相关的激发相引起的相干性减慢了双量子位纠缠的原本快速的衰减。我们还表明,通过与腔量子电动力学设置中的相关光子相互作用,可以纠缠两个空间分离且未耦合的量子位。最后,我们分析了如何使用量子相干性在稳态的量子拍频激光器中产生连续可变的纠缠,并提出了在量子光刻中的可能实现方法。

著录项

  • 作者

    Sete, Eyob Alebachew.;

  • 作者单位

    Texas A&M University.;

  • 授予单位 Texas A&M University.;
  • 学科 Physics Quantum.;Physics Optics.
  • 学位 Ph.D.
  • 年度 2012
  • 页码 183 p.
  • 总页数 183
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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