Superconducting qubit control using cryogenic frequency conversion
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
Journal Info
Applied Physics Letters
American Institute of Physics
Authors (9)
G. Giesbrecht
Department of Electrical, Computer, and Energy Engineering, University of Colorado Boulder 1 , Boulder, Colorado 80309,
M. A. Castellanos-Beltran
National Institute of Standards and Technology 2 , Boulder, Colorado 80305,
A. Sirois
National Institute of Standards and Technology 2 , Boulder, Colorado 80305,
N. Flowers-Jacobs
National Institute of Standards and Technology 2 , Boulder, Colorado 80305,
D. Olaya
National Institute of Standards and Technology 2 , Boulder, Colorado 80305,
M. Vissers
National Institute of Standards and Technology 2 , Boulder, Colorado 80305,
A. Giachero
Department of Physics, University of Colorado Boulder 3 , Boulder, Colorado 80309,
T. Barton
Department of Electrical, Computer, and Energy Engineering, University of Colorado Boulder 1 , Boulder, Colorado 80309,
P. Dresselhaus
National Institute of Standards and Technology 2 , Boulder, Colorado 80305,