High Coherence in a Tileable 3D Integrated Superconducting Circuit Architecture
arXiv:2107.11140 · doi:10.1126/sciadv.abl6698
Abstract
We report high qubit coherence as well as low crosstalk and single-qubit gate errors in a superconducting circuit architecture that promises to be tileable to 2D lattices of qubits. The architecture integrates an inductively shunted cavity enclosure into a design featuring non-galvanic 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 s, pure echoed dephasing times s, and single-qubit gate fidelities 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.
Main: 8 pages, 7 figures, 3 tables. Appendices: 8 pages, 9 figures, 1 table
References in corpus (19)
- Supplementary information for "Quantum supremacy using a programmable superconducting processor"
- Charge insensitive qubit design derived from the Cooper pair box
- Surface codes: Towards practical large-scale quantum computation
- Simple pulses for elimination of leakage in weakly nonlinear qubits
- Approaching Unit Visibility for Control of a Superconducting Qubit with Dispersive Readout
- Controlling the spontaneous emission of a superconducting transmon qubit
- Qubit-photon interactions in a cavity: Measurement induced dephasing and number splitting
- Black-box superconducting circuit quantization
- Decoherence benchmarking of superconducting qubits
- Quantum walks on a programmable two-dimensional 62-qubit superconducting processor
- Characterization of addressability by simultaneous randomized benchmarking
- Correlated Charge Noise and Relaxation Errors in Superconducting Qubits
- Randomized benchmarking and process tomography for gate errors in a solid-state qubit
- Unsupervised Machine Learning on a Hybrid Quantum Computer
- Quasiparticle relaxation of superconducting qubits in the presence of flux
- Improved Superconducting Qubit Readout by Qubit-Induced Nonlinearities
- Operation and intrinsic error budget of a two-qubit cross-resonance gate
- Microwave Package Design for Superconducting Quantum Processors
- Superconducting Through-Silicon Vias for Quantum Integrated Circuits
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- Wafer-scale uniformity of Dolan-bridge and bridgeless Manhattan-style Josephson junctions for superconducting quantum processors
- Multi-qubit time-varying quantum channels for NISQ-era superconducting quantum processors
- Agents for self-driving laboratories applied to quantum computing
- Efficient characterization of qudit logical gates with gate set tomography using an error-free Virtual-Z-gate model
- Heralding entangled optical photons from a microwave quantum processor
- Above 99.9% Fidelity Single-Qubit Gates, Two-Qubit Gates, and Readout in a Single Superconducting Quantum Device
- Quantum phase transitions in a Dicke trimer with both photon and atom hoppings
- Low crosstalk modular flip-chip architecture for coupled superconducting qubits
- Integrating planar circuits with superconducting 3D microwave cavities using tunable low-loss couplers
- Intermodulation spectroscopy and the nonlinear response of two-level systems in superconducting coplanar waveguide resonators
- Scalable quantum eraser for superconducting integrated circuits
- The Virtual Quantum Device (VQD): A tool for detailed emulation of quantum computers