Cosmic muon flux attenuation methods for superconducting qubit experiments
arXiv:2303.04938 · doi:10.1088/1367-2630/adaedc
Abstract
We propose and demonstrate two practical mitigation methods to attenuate the cosmic muon flux, compatible with experiments involving superconducting qubits: shallow underground sites and specific device orientation. Using a specifically-built cosmic muon detector, we identify underground sites, widely present in urban environments, where significant attenuation of cosmic muon flux, up to a factor 35 for 100-meter depths, can be attained. Furthermore, we employ two germanium wafers in an above-ground laboratory, each equipped with a particle sensor, to show how the orientation of the chip with respect to the sky affects the amount and type of energy deposited on the substrate by ionizing radiation. We observe that the horizontal detector sees more counts at lower energy, while the vertical one is impacted by more particles at higher energy. The methods here described proposed ways to directly understand and reduce the effects of cosmic rays on qubits by attenuating the source of this type of decoherence, complementing existing on-chip mitigation strategies. We expect that both on-chip and off-chip methods combined will become ubiquitous in quantum technologies based on superconducting qubit circuits.
References in corpus (37)
- Supplementary information for "Quantum supremacy using a programmable superconducting processor"
- Surface codes: Towards practical large-scale quantum computation
- Fluctuations of Energy-Relaxation Times in Superconducting Qubits
- CUORE: A Cryogenic Underground Observatory for Rare Events
- Correlated Charge Noise and Relaxation Errors in Superconducting Qubits
- Impact of ionizing radiation on superconducting qubit coherence
- Resolving catastrophic error bursts from cosmic rays in large arrays of superconducting qubits
- Radio detection of Cosmic-Ray Air Showers and High-Energy Neutrinos
- Quasiparticle relaxation of superconducting qubits in the presence of flux
- Ultrahigh Energy Cosmic Rays
- Electric field spectroscopy of material defects in transmon qubits
- Reducing the impact of radioactivity on quantum circuits in a deep-underground facility
- Exclusion limits on the WIMP-nucleon cross-section from the Cryogenic Dark Matter Search
- The China Jinping Underground Laboratory and its Early Science
- EXCESS workshop: Descriptions of rising low-energy spectra
- Phonon traps reduce the quasiparticle density in superconducting circuits
- Cosmic-muon flux and annual modulation in Borexino at 3800 m water-equivalent depth
- Normal-metal quasiparticle traps for superconducting qubits
- Engineering superconducting qubits to reduce quasiparticles and charge noise
- TLS Dynamics in a Superconducting Qubit Due to Background Ionizing Radiation
- Phonon downconversion to suppress correlated errors in superconducting qubits
- Environmental Radiation Impact on Lifetimes and Quasiparticle Tunneling Rates of Fixed-Frequency Transmon Qubits
- Mitigation of Cosmic Ray Effect on Microwave Kinetic Inductance Detector Arrays
- Cosmic muon flux at shallow depths underground
- Cosmogenic Activation of Materials Used in Rare Event Search Experiments
- The Cosmic Ray Muon Flux at WIPP
- The Sanford Underground Research Facility at Homestake
- Cosmogenic activation of materials
- Mitigation of quasiparticle loss in superconducting qubits by phonon scattering
- Disentangling the sources of ionizing radiation in superconducting qubits
- Background in -ray detectors and carbon beam tests in the Felsenkeller shallow-underground accelerator laboratory
- Operating in a deep underground facility improves the locking of gradiometric fluxonium qubits at the sweet spots
- Neutron background measurement for rare event search experiments in the YangYang Underground Laboratory
- A method to define the energy threshold depending on noise level for rare event searches
- Construction of Yemilab
- The CROSS Experiment: Rejecting Surface Events by PSD Induced by Superconducting Films
- A novel mechanical design of a bolometric array for the CROSS double-beta decay experiment