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Calibrating Magnetic Flux Control in Superconducting Circuits by Compensating Distortions on Time Scales from Nanoseconds up to Tens of Microseconds

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arxiv 2503.04610 v1 pith:R4SAU4BP submitted 2025-03-06 quant-ph

Calibrating Magnetic Flux Control in Superconducting Circuits by Compensating Distortions on Time Scales from Nanoseconds up to Tens of Microseconds

classification quant-ph
keywords fluxcontroldistortionssuperconductingtimecalibratingerrorsessential
verification ladder T0 review T1 audit T2 compute T3 formal T4 reserved
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Fast tuning of the transition frequency of superconducting qubits using magnetic flux is essential, for example, for realizing high-fidelity two-qubit gates with low leakage or for reducing errors in dispersive qubit readout. To apply accurately shaped flux pulses, signal distortions induced by the flux control lines need to be carefully compensated for. This requires their in situ characterization at the reference plane of the qubit. However, many existing approaches are limited in time resolution or in pulse duration. Here, we overcome these limitations and demonstrate accurate flux control with sub-permille residual frequency errors on time scales ranging from nanoseconds to tens of microseconds. We achieve this by combining two complementary methods to characterize and compensate for pulse distortions. We have deployed this approach successfully in a quantum error correction experiment calibrating 24 flux-activated two-qubit gates. Reliable calibration methods, as the ones presented here, are essential in experiments scaling up superconducting quantum processors.

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Cited by 2 Pith papers

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    quant-ph 2025-03 conditional novelty 4.0

    Experimental optimization of tunable coupler frequencies in a multi-transmon circuit QED processor to suppress spectator-induced errors on quantum operations.