Robust NbN on Si-SiGe hybrid superconducting-semiconducting microwave quantum circuit

Fuente: arXiv
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Autores principales: Foshat, Paniz, Kalhor, Samane, Poorgholam-khanjari, Shima, Paul, Douglas, Weides, Martin, Delfanazari, Kaveh
Formato: Preprint
Publicado: 2025
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author Foshat, Paniz
Kalhor, Samane
Poorgholam-khanjari, Shima
Paul, Douglas
Weides, Martin
Delfanazari, Kaveh
author_facet Foshat, Paniz
Kalhor, Samane
Poorgholam-khanjari, Shima
Paul, Douglas
Weides, Martin
Delfanazari, Kaveh
contents Advancing large-scale quantum computing requires superconducting circuits that combine long coherence times with compatibility with semiconductor technology. We investigate niobium nitride (NbN) coplanar waveguide resonators integrated with Si/SiGe quantum wells, creating a hybrid platform designed for CMOS-compatible quantum hardware. Using temperature-dependent microwave spectroscopy in the single-photon regime, we examine resonance frequency and quality factor variations to probe the underlying loss mechanisms. Our analysis identifies the roles of two-level systems, quasiparticles, and scattering processes, and connects these losses to wafer properties and fabrication methods. The devices demonstrate reproducible performance and stable operation maintained for over two years, highlighting their robustness. These results provide design guidelines for developing low-loss, CMOS-compatible superconducting circuits and support progress toward resilient, scalable architectures for quantum information processing.
format Preprint
id arxiv_https___arxiv_org_abs_2509_26363
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Robust NbN on Si-SiGe hybrid superconducting-semiconducting microwave quantum circuit
Foshat, Paniz
Kalhor, Samane
Poorgholam-khanjari, Shima
Paul, Douglas
Weides, Martin
Delfanazari, Kaveh
Quantum Physics
Materials Science
Hardware Architecture
Emerging Technologies
Systems and Control
Advancing large-scale quantum computing requires superconducting circuits that combine long coherence times with compatibility with semiconductor technology. We investigate niobium nitride (NbN) coplanar waveguide resonators integrated with Si/SiGe quantum wells, creating a hybrid platform designed for CMOS-compatible quantum hardware. Using temperature-dependent microwave spectroscopy in the single-photon regime, we examine resonance frequency and quality factor variations to probe the underlying loss mechanisms. Our analysis identifies the roles of two-level systems, quasiparticles, and scattering processes, and connects these losses to wafer properties and fabrication methods. The devices demonstrate reproducible performance and stable operation maintained for over two years, highlighting their robustness. These results provide design guidelines for developing low-loss, CMOS-compatible superconducting circuits and support progress toward resilient, scalable architectures for quantum information processing.
title Robust NbN on Si-SiGe hybrid superconducting-semiconducting microwave quantum circuit
topic Quantum Physics
Materials Science
Hardware Architecture
Emerging Technologies
Systems and Control
url https://arxiv.org/abs/2509.26363