Highly-twisted states of light from a high quality factor photonic crystal ring
Xiyuan Lu, Mingkang Wang, Feng Zhou, Mikkel Heuck, Wenqi Zhu, Vladimir, A. Aksyuk, Dirk R. Englund, and Kartik Srinivasan

TL;DR
This paper demonstrates high-quality factor photonic crystal ring resonators capable of generating high orbital angular momentum states of light with high efficiency, providing new physical insights into mode coupling and limits of OAM in microresonators.
Contribution
It introduces a new empirical model linking mode coupling to OAM generation, achieving high-Q, high-OAM states, and explains the physics behind OAM ejection efficiency and quality factor limits.
Findings
Achieved Q factors of 10^5 to 10^6 in OAM microresonators.
Demonstrated OAM states with up to l=60.
Achieved OAM ejection efficiency up to 90%.
Abstract
Twisted light with orbital angular momentum (OAM) has been extensively studied for applications in quantum and classical communications, microscopy, and optical micromanipulation. Ejecting the naturally high angular momentum whispering gallery modes (WGMs) of an optical microresonator through a grating-assisted mechanism, where the generated OAM number () is the difference of the angular momentum of the WGM and that of the grating, provides a scalable, chip-integrated solution for OAM generation. However, demonstrated OAM microresonators have exhibited a much lower quality factor () than conventional WGM resonators (by ), and an understanding of the ultimate limits on has been lacking. This is crucial given the importance of in enhancing light-matter interactions, such as single emitter coupling and parametric nonlinear processes, that underpin many important…
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Taxonomy
TopicsAdvanced Fiber Laser Technologies · Photonic and Optical Devices · Orbital Angular Momentum in Optics
