Research progress of ion trap quantum computing

Yu-Kai Wu, Lu-Ming Duan
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Abstract

Ion trap is one of the leading physical platforms to implement quantum computation. Currently, high-fidelity elementary quantum operations above the fault-tolerant threshold, including state preparation, measurement and universal gates, have been demonstrated for tens of ionic qubits. One important future research direction is to further enlarge the qubit number to the scale required for solving practical problems while maintaining the high performance of individual qubits. This paper introduces the current mainstream schemes for scalable ion trap quantum computation like quantum charge-coupled device (QCCD) and ion-photon quantum network, and describes the main limiting factors in current research. Then we further explore new schemes to scale up the qubit number like two-dimensional ion crystals and dual-type qubit, and discuss the future research directions.
离子阱量子计算的研究进展
离子阱是实现量子计算的主要物理平台之一。目前,超过容错阈值的高保真基本量子操作,包括状态准备、测量和通用门,已经在数十个离子量子比特上得到了证明。未来一个重要的研究方向是在保持单个量子比特的高性能的同时,将量子比特数进一步扩大到解决实际问题所需的规模。本文介绍了目前可扩展离子阱量子计算的主流方案,如量子电荷耦合器件(QCCD)和离子光子量子网络,并描述了目前研究中的主要限制因素。在此基础上,我们进一步探索了二维离子晶体和双型量子比特等扩大量子比特数的新方案,并讨论了未来的研究方向。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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