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Integrated optics architecture for trapped-ion quantum information processing

机译:用于捕获离子量子信息处理的集成光学架构

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Standard schemes for trapped-ion quantum information processing (QIP) involve the manipulation of ions in a large array of interconnected trapping potentials. The basic set of QIP operations, including state initialization, universal quantum logic, and state detection, is routinely executed within a single array site by means of optical operations, including various laser excitations as well as the collection of ion fluorescence. Transport of ions between array sites is also routinely carried out in microfabricated trap arrays. However, it is still not possible to perform optical operations in parallel across all array sites. The lack of this capability is one of the major obstacles to scalable trapped-ion QIP and presently limits exploitation of current microfabricated trap technology. Here we present an architecture for scalable integration of optical operations in trapped-ion QIP. We show theoretically that diffractive mirrors, monolithically fabricated on the trap array, can efficiently couple light between trap array sites and optical waveguide arrays. Integrated optical circuits constructed from these waveguides can be used for sequencing of laser excitation and fluorescence collection. Our scalable architecture supports all standard QIP operations, as well as photon-mediated entanglement channels, while offering substantial performance improvements over current techniques.
机译:捕获离子量子信息处理(QIP)的标准方案涉及对互连的大量捕获电势中的离子进行操纵。 QIP操作的基本集合,包括状态初始化,通用量子逻辑和状态检测,通常通过光学操作在单个阵列位点内执行,包括各种激光激发以及离子荧光的收集。离子在阵列位点之间的传输也通常在微型陷阱阵列中进行。但是,仍然不可能在所有阵列位置上并行执行光学操作。缺乏此功能是可扩展捕集离子QIP的主要障碍之一,并且目前限制了对当前的微型陷阱技术的利用。在这里,我们提出了用于捕获离子QIP中光学操作的可伸缩集成的体系结构。我们从理论上证明,单片制造在陷波器阵列上的衍射镜可以有效地在陷波器阵列位置和光波导阵列之间耦合光。由这些波导构成的集成光学电路可用于激光激发和荧光收集的排序。我们的可扩展体系结构支持所有标准的QIP操作以及光子介导的纠缠通道,同时提供了与现有技术相比显着的性能改进。

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