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Radio frequency mixing modules for superconducting qubit room temperature control systems

Quantum Physics 2021-07-26 v3

Abstract

As the number of qubits in nascent quantum processing units increases, the connectorized RF (radio frequency) analog circuits used in first generation experiments become exceedingly complex. The physical size, cost and electrical failure rate all become limiting factors in the extensibility of control systems. We have developed a series of compact RF mixing boards to address this challenge by integrating I/Q quadrature mixing, IF(intermediate frequency)/LO(local oscillator)/RF power level adjustments, and DC (direct current) bias fine tuning on a 40 mm ×\times 80 mm 4-layer PCB (printed circuit board) board with EMI (electromagnetic interference) shielding. The RF mixing module is designed to work with RF and LO frequencies between 2.5 and 8.5 GHz. The typical image rejection and adjacent channel isolation are measured to be \sim27 dBc and \sim50 dB. By scanning the drive phase in a loopback test, the module short-term amplitude and phase linearity are typically measured to be 5×\times104^{-4} (Vpp_{\mathrm{pp}}/Vmean_{\mathrm{mean}}) and 1×\times103^{-3} radian (pk-pk). The operation of RF mixing board was validated by integrating it into the room temperature control system of a superconducting quantum processor and executing randomized benchmarking characterization of single and two qubit gates. We measured a single-qubit process infidelity of 9.3(3)×1049.3(3) \times 10^{-4} and a two-qubit process infidelity of 2.7(1)×1022.7(1) \times 10^{-2}.

Keywords

Cite

@article{arxiv.2101.00066,
  title  = {Radio frequency mixing modules for superconducting qubit room temperature control systems},
  author = {Yilun Xu and Gang Huang and David I. Santiago and Irfan Siddiqi},
  journal= {arXiv preprint arXiv:2101.00066},
  year   = {2021}
}

Comments

Updated the title. Added the git repository of RF mixing modules design. Added the explanation for SRB. Added funding agency

R2 v1 2026-06-23T21:40:14.671Z