English

Terahertz source-on-a-chip with decade-long stability using layered superconductor elliptical microcavities

Quantum Physics 2025-07-01 v1 Superconductivity Systems and Control Systems and Control Applied Physics Optics

Abstract

Coherent, continuous-wave, and electrically tunable chip-scale terahertz (THz) sources are critical for emerging applications in sensing, imaging, spectroscopy, communication, space and quantum technologies. Here, we demonstrate a robust source-on-a-chip THz emitter based on a layered high-temperature superconductor, engineered with an elliptical microcavity and capable of sustained coherent emission over an unprecedented operational lifetime exceeding 11 years. This compact THz source operates up to 60 K, with Tc= 90 K, delivering stable radiation in the 0.7-0.8 THz range, with on-chip electrical tunability from 100 GHz to 1 THz. Coherence arises from the phase-locked oscillation of intrinsic Josephson junction arrays, resonantly coupled to transverse electromagnetic modes within the cavity, analogous to a laser cavity, yielding collective macroscopic oscillations. THz emission remains detectable across a 0.5 m free-space open-air link at room temperature. We analyse the cavity-mode structure and extract THz photon generation rates up to 503 photons fs-1 in cryogenic conditions and 50-260 photons ps-1 over-the-air. These results establish long-term coherent THz emission from superconductors and chart a viable path toward scalable, tunable, solid-state coherent THz laser-on-a-chip platforms, especially for future classical and quantum systems.

Keywords

Cite

@article{arxiv.2506.22811,
  title  = {Terahertz source-on-a-chip with decade-long stability using layered superconductor elliptical microcavities},
  author = {Mingqi Zhang and Shungo Nakagawa and Yuki Enomoto and Yoshihiko Kuzumi and Ryuta Kikuchi and Yuki Yamauchi and Toshiaki Hattori and Richard A. Klemm and Kazuo Kadowaki and Takanari Kashiwagi and Kaveh Delfanazari},
  journal= {arXiv preprint arXiv:2506.22811},
  year   = {2025}
}

Comments

24 pages, 18 Figures

R2 v1 2026-07-01T03:37:41.320Z