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Scaling of decoherence for a system of uncoupled spin qubits

机译:解耦自旋量子位系统的退相干缩放

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Significant experimental progresses in recent years have generated continued interest in quantum computation. A practical quantum computer would employ thousands if not millions of coherent qubits, and maintaining coherence in such a large system would be imperative for its utility. As an attempt at understanding the quantum coherence of multiple qubits, here we study decoherence of a multi-spin-qubit state under the influence of hyperfine interaction, and clearly demonstrate that the state structure is crucial to the scaling behavior of n -spin decoherence. Specifically, we find that coherence times of a multi-spin state at most scale with the number of qubits n as , while some states with higher symmetries have scale-free coherence with respect to n . Statistically, convergence to these scaling behavior is generally determined by the size of the Hilbert space m , which is usually much larger than n (up to an exponential function of n ), so that convergence rate is very fast as we increase the number of qubits. Our results can be extended to other decoherence mechanisms, including in the presence of dynamical decoupling, which allow meaningful discussions on the scalability of spin-based quantum coherent technology.
机译:近年来的重大实验进展引起了人们对量子计算的持续兴趣。实用的量子计算机将使用数千个甚至数百万个相干的量子比特,并且在如此大的系统中保持相干性对于其实用性至关重要。为了理解多个量子位的量子相干性,我们在超精细相互作用的影响下研究了多自旋量子位态的去相干性,并清楚地证明了这种状态结构对于n自旋去相干的定标行为至关重要。具体来说,我们发现多旋转状态的相干时间在最大范围内具有qubit数n,而某些对称性更高的状态相对于n具有无标度相干性。从统计上讲,对这些缩放行为的收敛通常由希尔伯特空间m的大小确定,希尔伯空间m的大小通常比n大得多(最大为n的指数函数),因此随着我们增加量子位的数量,收敛速度非常快。我们的结果可以扩展到其他去相干机制,包括在存在动态去耦的情况下,从而可以对基于自旋的量子相干技术的可扩展性进行有意义的讨论。

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