Superconducting qubit control using cryogenic frequency conversion

G G. Giesbrecht (Department of Electrical, Computer, and Energy Engineering, University of Colorado Boulder 1 , Boulder, Colorado 80309,) M M. A. Castellanos-Beltran (National Institute of Standards and Technology 2 , Boulder, Colorado 80305,) A A. Sirois (National Institute of Standards and Technology 2 , Boulder, Colorado 80305,) N N. Flowers-Jacobs (National Institute of Standards and Technology 2 , Boulder, Colorado 80305,) D D. Olaya (National Institute of Standards and Technology 2 , Boulder, Colorado 80305,) M M. Vissers (National Institute of Standards and Technology 2 , Boulder, Colorado 80305,) A A. Giachero (Department of Physics, University of Colorado Boulder 3 , Boulder, Colorado 80309,) T T. Barton (Department of Electrical, Computer, and Energy Engineering, University of Colorado Boulder 1 , Boulder, Colorado 80309,) P P. Dresselhaus (National Institute of Standards and Technology 2 , Boulder, Colorado 80305,)

Abstract

Expanding to higher qubit frequencies introduces the challenge of routing >20 GHz signals into a dilution refrigerator without adding excess thermal load or frequency-dependent loss. In this work, we demonstrate a solution to this problem by using a frequency multiplier to drive the qubit with room-temperature control pulses at half or one third of the qubit frequency fQB. The control pulses are up-converted inside the cryogenic environment using a frequency multiplier based on a high-kinetic inductance nonlinear transmission line. We evaluated the success of the upconversion technique by comparing the randomized benchmarking error-per-gate metrics to that of a standard direct qubit driving technique. The fQB/2 drive technique achieved error rates consistent with the direct drive, with a minimum error per gate of 3.5×10−3 ± 0.4×10−3. The fQB/3 drive technique resulted in a minimum error per gate of 7.6×10−3 ± 0.81×10−3. While this demonstration is based around a fQB=4.836 GHz qubit so that a direct drive comparison is possible, this technique will allow higher-frequency qubits to be tested using existing radio frequency infrastructure.

Article Details

Volume / Issue Vol. 129, Issue 3
Published July 20, 2026
ISSN 0003-6951
Publisher American Institute of Physics

Journal Info

Applied Physics Letters

American Institute of Physics

ISSN: 0003-6951 Physical Sciences

Authors (9)

G

G. Giesbrecht

Department of Electrical, Computer, and Energy Engineering, University of Colorado Boulder 1 , Boulder, Colorado 80309,

M

M. A. Castellanos-Beltran

National Institute of Standards and Technology 2 , Boulder, Colorado 80305,

A

A. Sirois

National Institute of Standards and Technology 2 , Boulder, Colorado 80305,

N

N. Flowers-Jacobs

National Institute of Standards and Technology 2 , Boulder, Colorado 80305,

D

D. Olaya

National Institute of Standards and Technology 2 , Boulder, Colorado 80305,

M

M. Vissers

National Institute of Standards and Technology 2 , Boulder, Colorado 80305,

A

A. Giachero

Department of Physics, University of Colorado Boulder 3 , Boulder, Colorado 80309,

T

T. Barton

Department of Electrical, Computer, and Energy Engineering, University of Colorado Boulder 1 , Boulder, Colorado 80309,

P

P. Dresselhaus

National Institute of Standards and Technology 2 , Boulder, Colorado 80305,