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容错量子动力学解耦

Fault-tolerant quantum dynamical decoupling.

作者信息

Khodjasteh K, Lidar D A

机构信息

Physics Department, University of Toronto, Ontario, Canada M5S 1A7.

出版信息

Phys Rev Lett. 2005 Oct 28;95(18):180501. doi: 10.1103/PhysRevLett.95.180501. Epub 2005 Oct 26.

Abstract

Dynamical decoupling pulse sequences have been used to extend coherence times in quantum systems ever since the discovery of the spin-echo effect. Here we introduce a method of recursively concatenated dynamical decoupling pulses, designed to overcome both decoherence and operational errors. This is important for coherent control of quantum systems such as quantum computers. For bounded-strength, non-Markovian environments, such as for the spin-bath that arises in electron- and nuclear-spin based solid-state quantum computer proposals, we show that it is strictly advantageous to use concatenated pulses, as opposed to standard periodic dynamical decoupling pulse sequences. Namely, the concatenated scheme is both fault tolerant and superpolynomially more efficient, at equal cost. We derive a condition on the pulse noise level below which concatenation is guaranteed to reduce decoherence.

摘要

自自旋回波效应被发现以来,动态解耦脉冲序列就一直被用于延长量子系统中的相干时间。在此,我们介绍一种递归级联动态解耦脉冲的方法,旨在克服退相干和操作误差。这对于诸如量子计算机等量子系统的相干控制至关重要。对于有界强度的非马尔可夫环境,例如基于电子和核自旋的固态量子计算机方案中出现的自旋浴,我们表明使用级联脉冲相对于标准的周期性动态解耦脉冲序列具有严格的优势。也就是说,在同等成本下,级联方案既具有容错性,又在超多项式意义上更高效。我们推导了一个关于脉冲噪声水平的条件,在该条件以下,级联保证能减少退相干。

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