Lower-temperature fabrication of airbridges by grayscale lithography to increase yield of nanowire transmons in circuit QED quantum processors
arXiv:2301.04065 · doi:10.1063/5.0146814
Abstract
Quantum hardware based on circuit quantum electrodynamics makes extensive use of airbridges to suppress unwanted modes of wave propagation in coplanar-waveguide transmission lines. Airbridges also provide an interconnect enabling transmission lines to cross. Traditional airbridge fabrication produces a curved profile by reflowing resist at elevated temperature prior to metallization. The elevated temperature can affect the coupling energy and even yield of pre-fabricated Josephson elements of superconducting qubits, tuneable couplers and resonators. We employ grayscale lithography in place of reflow to reduce the peak airbridge processing temperature from to , showing a substantial yield increase of transmon qubits with Josephson elements realized using Al-contacted InAs nanowires.
10 pages, 7 figures, 1 table
References in corpus (5)
- Realizing Repeated Quantum Error Correction in a Distance-Three Surface Code
- Epitaxy of Semiconductor-Superconductor nanowires
- Detecting bit-flip errors in a logical qubit using stabilizer measurements
- Logical-qubit operations in an error-detecting surface code
- Shadow-wall lithography of ballistic superconductor-semiconductor quantum devices