A model-based RF-budgeted compiler workflow determines validated multitone frame partitions for frequency-multiplexed superconducting-qubit control, with a 12-qubit BV microwave layer closing in three four-tone frames at 240 ns.
Frequency Up-Conversion Schemes for Controlling Superconducting Qubits
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abstract
High-fidelity control of superconducting qubits requires the generation of microwave-frequency pulses precisely tailored on nanosecond timescales. These pulses are most commonly synthesized by up-converting and superimposing two narrow-band intermediate-frequency signals referred to as the in-phase (I) and quadrature (Q) components. While the calibration of their DC-offsets, relative amplitude and phase allows one to cancel unwanted sideband and carrier leakage, this IQ mixing approach suffers from the presence of additional spurious frequency components. Here, we experimentally study an alternative approach based on double frequency conversion, which overcomes this challenge and circumvents the need for IQ-calibration. We find a spurious-free dynamic range of more than 70$\,$dB and compare the quality of pulse generation against a state-of-the-art IQ mixing scheme by performing repeated single-qubit randomized benchmarking on a superconducting qubit.
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RF-Budgeted Frame Compilation for Frequency-Multiplexed Superconducting-Qubit Control Using Qubit-Control Identity Records and a Circuit-Informed RFSoC Model
A model-based RF-budgeted compiler workflow determines validated multitone frame partitions for frequency-multiplexed superconducting-qubit control, with a 12-qubit BV microwave layer closing in three four-tone frames at 240 ns.