arXiv · 2608.23043
Photonic Crystal Defect Nanocavities Based on Monocrystalline Yttrium Iron Garnet
Abstract
Monocrystalline yttrium iron garnet (YIG) is a key material for magneto optics and quantum magnonics owing to its high optical transparency, large magneto-optical (MO) effects at room temperature, and exceptionally-long spin coherence. While rich MO phenomena have been demonstrated in the microwave regime, extending these concepts to technologically important telecommunication wavelengths remains challenging due to the difficulty of fabricating high-quality YIG nanostructures. Here, we demonstrate photonic crystal (PhC) defect nanocavities based on monocrystalline Bi-substitudted YIG by developing a YIG-on-insulator platform and high-precision YIG nanopatterning. The fabricated nanocavities exhibit cavity resonances around lambda = 1500 nm with Q factors up to 1,800 and a mode volume V of 1.1(lambda/n)^3, corresponding to Q/V reaching around 10^3. The measured Q factor is primarily governed by intentionally introduced lattice modulations for out-of-plane light coupling, suggesting that further optimization of the cavity geometry and measurement configuration could yield an order-of-magnitude improvement of the experimental Q factor. YIG-based PhC nanocavities provide a platform for strongly confined light-magnetism interactions in the optical regime, opening pathways toward downsized nonreciprocal photonic devices and enhanced photon-magnon coupling.
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Kota Taniguchi, Siyuan Gao, Tatsuya Kitai, Takeru Yambe, Daisuke Sato, Hironobu Yoshimi, Satoshi Iwamoto, Yasutomo Ota. 2026-08-24. Photonic Crystal Defect Nanocavities Based on Monocrystalline Yttrium Iron Garnet. https://arxiv.org/abs/2608.23043
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