High coherence and low cross-talk in a tileable 3D integrated superconducting circuit architecture

Author:

Spring Peter A.1ORCID,Cao Shuxiang1ORCID,Tsunoda Takahiro1ORCID,Campanaro Giulio1ORCID,Fasciati Simone1ORCID,Wills James1,Bakr Mustafa1ORCID,Chidambaram Vivek1ORCID,Shteynas Boris1ORCID,Carpenter Lewis2,Gow Paul2ORCID,Gates James2ORCID,Vlastakis Brian1,Leek Peter J.1ORCID

Affiliation:

1. Clarendon Laboratory, Department of Physics, University of Oxford, Oxford OX1 3PU, UK.

2. Optoelectronics Research Centre, University of Southampton, Southampton SO17 1BJ, UK.

Abstract

We report high qubit coherence as well as low cross-talk and single-qubit gate errors in a superconducting circuit architecture that promises to be tileable to two-dimensional (2D) lattices of qubits. The architecture integrates an inductively shunted cavity enclosure into a design featuring nongalvanic out-of-plane control wiring and qubits and resonators fabricated on opposing sides of a substrate. The proof-of-principle device features four uncoupled transmon qubits and exhibits average energy relaxation times T 1 = 149(38) μs, pure echoed dephasing times T ϕ, e = 189(34) μs, and single-qubit gate fidelities F = 99.982(4)% as measured by simultaneous randomized benchmarking. The 3D integrated nature of the control wiring means that qubits will remain addressable as the architecture is tiled to form larger qubit lattices. Band structure simulations are used to predict that the tiled enclosure will still provide a clean electromagnetic environment to enclosed qubits at arbitrary scale.

Publisher

American Association for the Advancement of Science (AAAS)

Subject

Multidisciplinary

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