English

Suspension-Free Integrated Cavity Brillouin Optomechanics on a Chip

Optics 2025-10-24 v1

Abstract

Cavity optomechanical systems enable coherent photon-phonon interactions essential for quantum technologies, yet high-performance devices have been limited to suspended structures. Here, we overcome this limitation by demonstrating cavity Brillouin optomechanics in a suspension-free racetrack microring resonator on a lithium-niobate-on-sapphire chip, a platform that merits high stability and scalability. We demonstrate coherent coupling between telecom-band optical modes and a 9.6-GHz phonon mode, achieving a maximum cooperativity of 0.410.41 and a phonon quality-factor-frequency product of 1013Hz10^{13}\,\mathrm{Hz}. The momentum-matching condition inherent to traveling-wave Brillouin interactions establishes a one-to-one mapping between optical wavelength and phonon frequency, enabling multi-channel parallel operations across nearly 300MHz300\,\mathrm{MHz} in phonon frequency and 40nm40\,\mathrm{nm} in optical wavelength. Our suspension-free architecture provides a coherent photon-phonon interface compatible with wafer-scale integration, opening pathways toward hybrid quantum circuits that unite photonic, phononic, and superconducting components on a single chip.

Keywords

Cite

@article{arxiv.2510.20463,
  title  = {Suspension-Free Integrated Cavity Brillouin Optomechanics on a Chip},
  author = {Yuan-Hao Yang and Jia-Qi Wang and Zheng-Xu Zhu and Xin-Biao Xu and Ming Li and Juanjuan Lu and Guang-Can Guo and Luyan Sun and Chang-Ling Zou},
  journal= {arXiv preprint arXiv:2510.20463},
  year   = {2025}
}

Comments

6 pages, 4 figures