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Experimental Implementation of Discrete Time Quantum Random Walk on an NMR Quantum Information Processor

机译:离散时间量子随机游动在NMR量子信息处理器上的实验实现

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摘要

We present an experimental implementation of the coined discrete time quantum walk on a square using a three qubit liquid state nuclear magnetic resonance (NMR) quantum information processor (QIP). Contrary to its classical counterpart, we observe complete interference after certain steps and a periodicity in the evolution. Complete state tomography has been performed for each of the eight steps making a full period. The results have extremely high fidelity with the expected states and show clearly the effects of quantum interference in the walk. We also show and discuss the importance of choosing a molecule with a natural Hamiltonian well suited to NMR QIP by implementing the same algorithm on a second molecule. Finally, we show experimentally that decoherence after each step makes the statistics of the quantum walk tend to that of the classical random walk.
机译:我们介绍了使用三量子位液态核磁共振(NMR)量子信息处理器(QIP)在正方形上创造出的离散时间量子行走的实验实现。与它的经典对应物相反,我们观察到某些步骤和演化的周期性后会发生完全干扰。已对整个步骤的八个步骤中的每个步骤执行了完整的状态层析成像。结果在预期状态下具有极高的保真度,并清楚显示了步行中量子干扰的影响。我们还展示并讨论了通过在第二个分子上实施相同的算法来选择具有非常适合NMR QIP的自然哈密顿量的分子的重要性。最后,我们通过实验证明,每一步之后的退相干使量子步态的统计趋向于经典随机步态的统计。

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