Search engine for discovering works of Art, research articles, and books related to Art and Culture
ShareThis
Javascript must be enabled to continue!

Simplified Josephson-junction fabrication process for reproducibly high-performance superconducting qubits

View through CrossRef
We introduce a simplified fabrication technique for Josephson junctions and demonstrate superconducting Xmon qubits with T1 relaxation times averaging above 50 μs (Q>1.5×106). Current shadow-evaporation techniques for aluminum-based Josephson junctions require a separate lithography step to deposit a patch that makes a galvanic, superconducting connection between the junction electrodes and the circuit wiring layer. The patch connection eliminates parasitic junctions, which otherwise contribute significantly to dielectric loss. In our patch-integrated cross-type junction technique, we use one lithography step and one vacuum cycle to evaporate both the junction electrodes and the patch. This eliminates a key bottleneck in manufacturing superconducting qubits by reducing the fabrication time and cost. In a study of more than 3600 junctions, we show an average resistance variation of 3.7% on a wafer that contains forty 0.5×0.5-cm2 chips, with junction areas ranging between 0.01 and 0.16 μm2. The average on-chip spread in resistance is 2.7%, with 20 chips varying between 1.4% and 2%. For the junction sizes used for transmon qubits, we deduce a wafer-level transition-frequency variation of 1.7%–2.5%. We show that 60%–70% of this variation is attributed to junction-area fluctuations, while the rest is caused by tunnel-junction inhomogeneity. Such high frequency predictability is a requirement for scaling-up the number of qubits in a quantum computer.
Title: Simplified Josephson-junction fabrication process for reproducibly high-performance superconducting qubits
Description:
We introduce a simplified fabrication technique for Josephson junctions and demonstrate superconducting Xmon qubits with T1 relaxation times averaging above 50 μs (Q>1.
5×106).
Current shadow-evaporation techniques for aluminum-based Josephson junctions require a separate lithography step to deposit a patch that makes a galvanic, superconducting connection between the junction electrodes and the circuit wiring layer.
The patch connection eliminates parasitic junctions, which otherwise contribute significantly to dielectric loss.
In our patch-integrated cross-type junction technique, we use one lithography step and one vacuum cycle to evaporate both the junction electrodes and the patch.
This eliminates a key bottleneck in manufacturing superconducting qubits by reducing the fabrication time and cost.
In a study of more than 3600 junctions, we show an average resistance variation of 3.
7% on a wafer that contains forty 0.
5×0.
5-cm2 chips, with junction areas ranging between 0.
01 and 0.
16 μm2.
The average on-chip spread in resistance is 2.
7%, with 20 chips varying between 1.
4% and 2%.
For the junction sizes used for transmon qubits, we deduce a wafer-level transition-frequency variation of 1.
7%–2.
5%.
We show that 60%–70% of this variation is attributed to junction-area fluctuations, while the rest is caused by tunnel-junction inhomogeneity.
Such high frequency predictability is a requirement for scaling-up the number of qubits in a quantum computer.

Related Results

Instituting Superconducting Qubits for Scientists and Engineers
Instituting Superconducting Qubits for Scientists and Engineers
In the last two decades, a spectacular development in the superconducting qubits has been accomplished experimentally as well as theoretically. The main reason for that is the real...
Improving Josephson junction reproducibility for superconducting quantum circuits: junction area fluctuation
Improving Josephson junction reproducibility for superconducting quantum circuits: junction area fluctuation
AbstractJosephson superconducting qubits and parametric amplifiers are prominent examples of superconducting quantum circuits that have shown rapid progress in recent years. As suc...
Solitonic Andreev spin qubits from Andreev states in Corbino Josephson junctions
Solitonic Andreev spin qubits from Andreev states in Corbino Josephson junctions
We study a type of solitonic Andreev bound state (ABS) in a Corbino-geometry Josephson junction created on a two-dimensional electron gas (2DEG). The Josephson junction is subjecte...
Opportunities for the direct manipulation of a phase-driven Andreev spin qubit
Opportunities for the direct manipulation of a phase-driven Andreev spin qubit
Opportunités de manipulation directe d'un qubit de spin d'Andreev piloté en phase The research presented in this thesis delves into a theoretical exploration of And...
Vortex pattern in three-dimensional mesoscopic superconducting rings
Vortex pattern in three-dimensional mesoscopic superconducting rings
Vortex structures in a mesoscopic a superconducting ring, which is in the magnetic field generated by a circular electric current, are investigated based on the phenomenological Gi...
Cat Qubit Stabilization with dc-biased Josephson Junctions
Cat Qubit Stabilization with dc-biased Josephson Junctions
Stabilisation de qubits de chats avec des jonctions Josephson polarisées en tension dc Un défi central en informatique quantique est la réalisation de qubits avec d...
Optimization of shadow evaporation and oxidation for reproducible quantum Josephson junction circuits
Optimization of shadow evaporation and oxidation for reproducible quantum Josephson junction circuits
Abstract The most commonly used physical realization of superconducting qubits for quantum circuits is a transmon. There are a number of supe...

Back to Top