A high-fidelity quantum matter-link between ion-trap microchip modules

Author:

Akhtar M.,Bonus F.ORCID,Lebrun-Gallagher F. R.ORCID,Johnson N. I.ORCID,Siegele-Brown M.,Hong S.,Hile S. J.ORCID,Kulmiya S. A.,Weidt S.,Hensinger W. K.ORCID

Abstract

AbstractSystem scalability is fundamental for large-scale quantum computers (QCs) and is being pursued over a variety of hardware platforms. For QCs based on trapped ions, architectures such as the quantum charge-coupled device (QCCD) are used to scale the number of qubits on a single device. However, the number of ions that can be hosted on a single quantum computing module is limited by the size of the chip being used. Therefore, a modular approach is of critical importance and requires quantum connections between individual modules. Here, we present the demonstration of a quantum matter-link in which ion qubits are transferred between adjacent QC modules. Ion transport between adjacent modules is realised at a rate of 2424 s−1 and with an infidelity associated with ion loss during transport below 7 × 10−8. Furthermore, we show that the link does not measurably impact the phase coherence of the qubit. The quantum matter-link constitutes a practical mechanism for the interconnection of QCCD devices. Our work will facilitate the implementation of modular QCs capable of fault-tolerant utility-scale quantum computation.

Publisher

Springer Science and Business Media LLC

Subject

General Physics and Astronomy,General Biochemistry, Genetics and Molecular Biology,General Chemistry,Multidisciplinary

Cited by 8 articles. 订阅此论文施引文献 订阅此论文施引文献,注册后可以免费订阅5篇论文的施引文献,订阅后可以查看论文全部施引文献

1. Rapid exchange cooling with trapped ions;Nature Communications;2024-02-05

2. A Race-Track Trapped-Ion Quantum Processor;Physical Review X;2023-12-18

3. FPGA-accelerated Quantum Transport Measurements;2023 International Conference on Field Programmable Technology (ICFPT);2023-12-12

4. Robotic Vectorial Field Alignment for Spin‐Based Quantum Sensors;Advanced Science;2023-11-17

5. Research Trends in Quantum Computers by Focusing on Qubits as Their Building Blocks;Quantum Reports;2023-09-13

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