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首页> 外文期刊>Physical Review, A. Atomic, molecular, and optical physics >Performance of deterministic dynamical decoupling schemes: Concatenated and periodic pulse sequences
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Performance of deterministic dynamical decoupling schemes: Concatenated and periodic pulse sequences

机译:确定性动态解耦方案的性能:级联和周期性脉冲序列

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Dynamical decoupling can be used to preserve arbitrary quantum states despite undesired interactions with the environment, using control Hamiltonians affecting the system only. We present a system-independent analysis of dynamical decoupling based on leading order decoupling error estimates, valid for bounded-strength environments. Using as a key tool a renormalization transformation of the effective system-bath coupling Hamiltonian, we delineate the reliability domain of dynamical decoupling used for quantum state preservation, in a general setting for a single qubit. We specifically analyze and compare two deterministic dynamical decoupling schemes-periodic and concatenated-and distinguish between two limiting cases of fast versus slow environments. We prove that concatenated decoupling outperforms periodic decoupling over a wide range of parameters. These results are obtained for both "ideal" (zero-width) and realistic (finite-width) pulses This work extends and generalizes our earlier work [Phys. Rev. Lett. 95, 180501 (2005)].
机译:尽管与环境发生了不希望的相互作用,但动态去耦可用于保留任意量子态,仅使用影响系统的控制哈密顿量即可。我们提出了基于前导去耦误差估计的动态去耦独立于系统的分析,对有限强度环境有效。使用有效系统-浴耦合哈密顿量的重新归一化转换作为关键工具,我们描绘了在单个量子位的一般设置下用于量子态保存的动态去耦的可靠性域。我们专门分析和比较了两种确定性的动态解耦方案(周期的和级联的),并区分了快速和慢速环境的两种极限情况。我们证明级联解耦在广泛的参数范围内优于周期性解耦。这些结果是针对“理想”(零宽度)和实际(有限宽度)脉冲获得的。牧师95,180501(2005)]。

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