Photonic crystal cavities based on suspended yttrium iron garnet nanobeams
arXiv:2412.05361 · doi:10.1103/xptl-hx1j
Abstract
We report the fabrication and optical characterization of an air-suspended photonic crystal nanobeam cavity in yttrium-iron-garnet (YIG) realized by focused-ion-beam milling. YIG's combination of low optical loss and ferrimagnetism makes it highly attractive for quantum technologies, yet prior work has largely been focused on millimeter-scale spheres and simple microstructures, hindering true on-chip integration. Demonstrating nanometer-scale patterning in a suspended geometry therefore represents an important advance. Finite-element simulations predict that the same structure supports a flapping-type mechanical mode at and a backward-volume spin-wave mode at under an in-plane bias field. Although we measure only the photonic resonance (intrinsic ) in this study, the device lays the groundwork for future exploration of coupled photon-phonon-magnon dynamics once higher optical quality factors are achieved.
References in corpus (10)
- Electromagnetically Induced Transparency and Slow Light with Optomechanics
- Strongly coupled magnons and cavity microwave photons
- Observation of strong coupling between a micromechanical resonator and an optical cavity field
- Hybrid quantum systems based on magnonics
- Towards a global quantum network
- Optimized optomechanical crystal cavity with acoustic radiation shield
- Ultra Thin Films of Yttrium Iron Garnet with Very Low Damping: A Review
- High efficiency coherent microwave-to-optics conversion via off-resonant scattering
- Design of an optomagnonic crystal: towards optimal magnon-photon mode matching at the microscale
- Squeezing-enhanced measurement sensitivity in a cavity optomechanical system