Resonant escape in Josephson tunnel junctions under millimeter-wave irradiation

J J. N. Kämmerer (Physikalisches Institut, Karlsruhe Institute of Technology 1 , 76131 Karlsruhe,) S S. Masis (Physikalisches Institut, Karlsruhe Institute of Technology 1 , 76131 Karlsruhe,) K K. Hambardzumyan (Physikalisches Institut, Karlsruhe Institute of Technology 1 , 76131 Karlsruhe,) P P. Lenhard (Physikalisches Institut, Karlsruhe Institute of Technology 1 , 76131 Karlsruhe,) U U. Strobel (Physikalisches Institut, Karlsruhe Institute of Technology 1 , 76131 Karlsruhe,) J J. Lisenfeld (Physikalisches Institut, Karlsruhe Institute of Technology 1 , 76131 Karlsruhe,) H H. Rotzinger (Physikalisches Institut, Karlsruhe Institute of Technology 1 , 76131 Karlsruhe,) A A. V. Ustinov (Physikalisches Institut, Karlsruhe Institute of Technology 1 , 76131 Karlsruhe,)

Abstract

The microwave-driven dynamics of the superconducting phase difference across a Josephson junction is now widely employed in superconducting qubits and quantum circuits. With their typical energy level separation frequency being several GHz, cooling these quantum devices to the ground state requires temperatures below 100 mK. Pushing the operation frequency of superconducting qubits up may allow for operation of superconducting qubits at 1 K and even higher temperatures. Here, we present measurements of the switching currents of niobium/aluminum–aluminum oxide/niobium Josephson junctions in the presence of millimeter-wave radiation at frequencies above 100 GHz. The observed switching current distributions display clear double-peak structures, which result from the resonant escape of the Josephson phase from a stationary state. We show that the data can be well explained by the strong-driving model including the irradiation-induced suppression of the potential barrier. While still being measured in the quasi-classical regime, our results point toward a feasibility of operating phase qubits around 100 GHz.

Article Details

Volume / Issue Vol. 126, Issue 17
Published April 28, 2025
ISSN 0003-6951
Publisher American Institute of Physics

Journal Info

Applied Physics Letters

American Institute of Physics

ISSN: 0003-6951 Physical Sciences

Authors (8)

J

J. N. Kämmerer

Physikalisches Institut, Karlsruhe Institute of Technology 1 , 76131 Karlsruhe,

S

S. Masis

Physikalisches Institut, Karlsruhe Institute of Technology 1 , 76131 Karlsruhe,

K

K. Hambardzumyan

Physikalisches Institut, Karlsruhe Institute of Technology 1 , 76131 Karlsruhe,

P

P. Lenhard

Physikalisches Institut, Karlsruhe Institute of Technology 1 , 76131 Karlsruhe,

U

U. Strobel

Physikalisches Institut, Karlsruhe Institute of Technology 1 , 76131 Karlsruhe,

J

J. Lisenfeld

Physikalisches Institut, Karlsruhe Institute of Technology 1 , 76131 Karlsruhe,

H

H. Rotzinger

Physikalisches Institut, Karlsruhe Institute of Technology 1 , 76131 Karlsruhe,

A

A. V. Ustinov

Physikalisches Institut, Karlsruhe Institute of Technology 1 , 76131 Karlsruhe,