High-Q slow light and its localization in a photonic crystal microring
Xiyuan Lu, Andrew McClung, and Kartik Srinivasan

TL;DR
This paper introduces a novel photonic crystal ring cavity that combines PhC and WGM concepts, achieving high-Q slow light modes and localized defect modes with significantly reduced mode volume, advancing photonics applications.
Contribution
The work presents the first demonstration of slow light and mode localization in a photonic crystal microring, enhancing Q-factors and reducing mode volume without complex electromagnetic design.
Findings
Achieved group velocity slowdown by 10 times near the dielectric band-edge.
Realized high-Q modes with Q approximately 50 times greater than previous slow light devices.
Localized WGM modes into defect modes with over 10 times reduced mode volume while maintaining high-Q.
Abstract
We introduce a photonic crystal ring cavity that resembles an internal gear and unites photonic crystal (PhC) and whispering gallery mode (WGM) concepts. This `microgear' photonic crystal ring (MPhCR) is created by applying a periodic modulation to the inside boundary of a microring resonator to open a large bandgap, as in a PhC cavity, while maintaining the ring's circularly symmetric outside boundary and high quality factor (), as in a WGM cavity. The MPhCR targets a specific WGM to open a large PhC bandgap up to tens of free spectral ranges, compressing the mode spectrum while maintaining the high-, angular momenta, and waveguide coupling properties of the WGM modes. In particular, near the dielectric band-edge, we observe modes whose group velocity is slowed down by 10 times relative to conventional microring modes while supporting . This is…
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