High-fidelity laser-free universal control of trapped ion qubits

Universal control of multiple qubits—the ability to entangle qubits and to perform arbitrary individual qubit operations 1 —is a fundamental resource for quantum computing 2 , simulation 3 and networking 4 . Qubits realized in trapped atomic ions have shown the highest-fidelity two-qubit entangling...

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Veröffentlicht in:Nature (London) 2021-09, Vol.597 (7875), p.209-213
Hauptverfasser: Srinivas, R., Burd, S. C., Knaack, H. M., Sutherland, R. T., Kwiatkowski, A., Glancy, S., Knill, E., Wineland, D. J., Leibfried, D., Wilson, A. C., Allcock, D. T. C., Slichter, D. H.
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Sprache:eng
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Zusammenfassung:Universal control of multiple qubits—the ability to entangle qubits and to perform arbitrary individual qubit operations 1 —is a fundamental resource for quantum computing 2 , simulation 3 and networking 4 . Qubits realized in trapped atomic ions have shown the highest-fidelity two-qubit entangling operations 5 – 7 and single-qubit rotations 8 so far. Universal control of trapped ion qubits has been separately demonstrated using tightly focused laser beams 9 – 12 or by moving ions with respect to laser beams 13 – 15 , but at lower fidelities. Laser-free entangling methods 16 – 20 may offer improved scalability by harnessing microwave technology developed for wireless communications, but so far their performance has lagged the best reported laser-based approaches. Here we demonstrate high-fidelity laser-free universal control of two trapped-ion qubits by creating both symmetric and antisymmetric maximally entangled states with fidelities of 1 − 0.0017 + 0 and 0.9977 − 0.0013 + 0.0010 , respectively (68 per cent confidence level), corrected for initialization error. We use a scheme based on radiofrequency magnetic field gradients combined with microwave magnetic fields that is robust against multiple sources of decoherence and usable with essentially any trapped ion species. The scheme has the potential to perform simultaneous entangling operations on multiple pairs of ions in a large-scale trapped-ion quantum processor without increasing control signal power or complexity. Combining this technology with low-power laser light delivered via trap-integrated photonics 21 , 22 and trap-integrated photon detectors for qubit readout 23 , 24 provides an opportunity for scalable, high-fidelity, fully chip-integrated trapped-ion quantum computing. Laser-free universal control of two trapped-ion qubits using a combination of radiofrequency and microwave magnetic fields achieves some of the highest fidelities ever reported for two-qubit maximally entangled states.
ISSN:0028-0836
1476-4687
DOI:10.1038/s41586-021-03809-4