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一个稳健、高保真度的几何两离子量子比特相位门的实验演示。

Experimental demonstration of a robust, high-fidelity geometric two ion-qubit phase gate.

作者信息

Leibfried D, DeMarco B, Meyer V, Lucas D, Barrett M, Britton J, Itano W M, Jelenković B, Langer C, Rosenband T, Wineland D J

机构信息

Time and Frequency Division, National Institute of Standards and Technology, 325 Broadway, Boulder, Colorado 80305, USA.

出版信息

Nature. 2003 Mar 27;422(6930):412-5. doi: 10.1038/nature01492.

Abstract

Universal logic gates for two quantum bits (qubits) form an essential ingredient of quantum computation. Dynamical gates have been proposed in the context of trapped ions; however, geometric phase gates (which change only the phase of the physical qubits) offer potential practical advantages because they have higher intrinsic resistance to certain small errors and might enable faster gate implementation. Here we demonstrate a universal geometric pi-phase gate between two beryllium ion-qubits, based on coherent displacements induced by an optical dipole force. The displacements depend on the internal atomic states; the motional state of the ions is unimportant provided that they remain in the regime in which the force can be considered constant over the extent of each ion's wave packet. By combining the gate with single-qubit rotations, we have prepared ions in an entangled Bell state with 97% fidelity-about six times better than in a previous experiment demonstrating a universal gate between two ion-qubits. The particular properties of the gate make it attractive for a multiplexed trap architecture that would enable scaling to large numbers of ion-qubits.

摘要

用于两个量子比特(qubit)的通用逻辑门是量子计算的重要组成部分。动态门已在囚禁离子的背景下被提出;然而,几何相位门(仅改变物理量子比特的相位)具有潜在的实际优势,因为它们对某些小误差具有更高的固有抗性,并且可能实现更快的门操作。在此,我们基于光偶极力诱导的相干位移,展示了两个铍离子量子比特之间的通用几何π相位门。位移取决于内部原子态;只要离子保持在力在每个离子波包范围内可视为恒定的状态,离子的运动状态并不重要。通过将该门与单量子比特旋转相结合,我们制备出了保真度为97%的纠缠贝尔态离子——比之前展示两个离子量子比特之间通用门的实验结果大约好六倍。该门的特殊性质使其对于能够扩展到大量离子量子比特的复用阱架构具有吸引力。

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