Surpassing millisecond coherence times in on-chip superconducting quantum memories by optimizing materials, processes, and circuit design
Suhas Ganjam, Yanhao Wang, Yao Lu, Archan Banerjee, Chan U Lei, Lev, Krayzman, Kim Kisslinger, Chenyu Zhou, Ruoshui Li, Yichen Jia, Mingzhao Liu,, Luigi Frunzio, Robert J. Schoelkopf

TL;DR
This paper demonstrates on-chip superconducting quantum memories with record coherence times of up to 2.7 ms by optimizing materials, processes, and circuit design, advancing quantum memory technology.
Contribution
It introduces a multimode characterization approach and material, process, and geometry optimizations that significantly improve coherence times in superconducting quantum circuits.
Findings
Achieved single-photon Ramsey times of 2.0-2.7 ms in on-chip quantum memories.
Reduced dielectric losses using tantalum-based materials and annealed sapphire substrates.
Predicted and verified relaxation times of aluminum- and tantalum-based transmon qubits.
Abstract
The performance of superconducting quantum circuits for quantum computing has advanced tremendously in recent decades; however, a comprehensive understanding of relaxation mechanisms does not yet exist. In this work, we utilize a multimode approach to characterizing energy losses in superconducting quantum circuits, with the goals of predicting device performance and improving coherence through materials, process, and circuit design optimization. Using this approach, we measure significant reductions in surface and bulk dielectric losses by employing a tantalum-based materials platform and annealed sapphire substrates. With this knowledge we predict and experimentally verify the relaxation times of aluminum- and tantalum-based transmon qubits. We additionally optimize device geometry to maximize coherence within a coaxial tunnel architecture, and realize on-chip quantum memories with…
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Taxonomy
TopicsQuantum Information and Cryptography · Quantum and electron transport phenomena · Quantum Computing Algorithms and Architecture
