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Transport dynamics of single ions in segmented microstructured Paul trap arrays

机译:分段微结构化Paul阱阵列中单离子的传输动力学

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摘要

It was recently proposed to use small groups of trapped ions as qubit carriers in miniaturized electrode arrays that comprise a large number of individual trapping zones, between which ions could be moved [1, 2]. This approach might be scalable for quantum information processing with a large numbers of qubits. Processing of quantum information is achieved by transporting ions to and from separate memory and qubit manipulation zones in between quantum logic operations. The transport of ion groups in this scheme plays a major role and requires precise experimental control and fast transport times. In this paper we introduce a theoretical framework to study ion transport in external potentials that might be created by typical miniaturized Paul trap electrode arrays. In particular we discuss the relationship between classical and quantum descriptions of the transport and study the energy transfer to the oscillatory motion during near-adiabatic transport. Based on our findings we suggest a numerical method to find electrode potentials as a function of time to optimize the local potential an ion experiences during transport. We demonstrate this method for one specific electrode geometry that should closely represent the situation encountered in realistic trap arrays.
机译:最近有人提出在小型化的电极阵列中使用一小组捕获的离子作为量子位载流子,该电极阵列包括大量单独的捕获区,在这些捕获区之间可以移动离子[1、2]。对于具有大量量子位的量子信息处理,该方法可能是可扩展的。量子信息的处理是通过在量子逻辑操作之间的往返于单独的存储区和量子位操作区中传输离子来实现的。在该方案中,离子基团的运输起着重要作用,需要精确的实验控制和快速的运输时间。在本文中,我们介绍了一个理论框架来研究外部电势中的离子传输,这些电势可能是由典型的微型Paul阱电极阵列产生的。特别是,我们讨论了输运的经典描述与量子描述之间的关系,并研究了近绝热输运过程中能量向振荡运动的传递。根据我们的发现,我们建议一种数值方法来找到随时间变化的电极电势,以优化离子在运输过程中遇到的局部电势。我们针对一种特定的电极几何结构演示了该方法,该几何结构应密切代表现实陷阱阵列中遇到的情况。

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