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Adiabatic generation of arbitrary coherent superpositions of two quantum states: Exact and approximate solutions

机译:两种量子态的绝热产生任意相干叠加:精确和近似解决方案

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摘要

The common objective of the application of adiabatic techniques in the field of quantum control is to transfer a quantum system from one discrete energy state to another. These techniques feature both high efficiency and insensitivity to variations in the experimental parameters, e.g., variations in the driving field amplitude, duration, frequency, and shape, as well as fluctuations in the environment. Here we explore the potential of adiabatic techniques for creating arbitrary predefined coherent superpositions of two quantum states. We show that an equally weighted coherent superposition can be created by temporal variation of the ratio between the Rabi frequency ?(t ) and the detuning ?(t ) from 0 to ∞ (case 1) or vice versa (case 2), as it is readily deduced from the explicit adiabatic solution for the Bloch vector. We infer important differences between cases 1 and 2 in the composition of the created coherent superposition: The latter depends on the dynamical phase of the process in case 2, while it does not depend on this phase in case 1. Furthermore, an arbitrary coherent superposition of unequal weights can be created by using asymptotic ratios of ?(t )/?(t ) different from 0 and ∞. We supplement the general adiabatic solution with analytic solutions for three exactly soluble models: two trigonometric models and the hyperbolic Demkov-Kunike model. They allow us not only to demonstrate the general predictions in specific cases but also to derive the nonadiabatic corrections to the adiabatic solutions.
机译:在量子控制领域中应用绝热技术的常见目的是将量子系统从一个离散能量状态转移到另一个离散能量状态。这些技术具有高效率和不敏感性对实验参数的变化,例如,驱动场幅度,持续时间,频率和形状的变化,以及环境的波动。在这里,我们探讨了用于创建两个量子状态的任意预定义相干叠加的绝热技术的潜力。我们表明,一个相等地加权相干叠加可以通过拉比频率之间的比率的时间变化来创建?(t)和失谐?从0到∞(情况1)(t)或反之亦然(情况2),因为它从明确的绝热溶液中容易推导出Bloch载体。我们推断在所创建的相干叠加的组合物例1 2之间,并且重要的区别:后者取决于过程的动力学阶段在情况2中,虽然它没有在外壳1依赖于该相位此外,任意的相干叠加可以通过使用与0和∞不同的渐近比(t)/?(t)使用渐近比来创建不平等的重量。我们为三种完全可溶性模型进行了分析解决方案的普通绝热解决方案:两个三角模型和双曲德科夫 - kunike模型。他们允许我们不仅可以在特定情况下展示一般预测,而且还旨在导出对绝热溶液的非等压校正。

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