Highly-twisted states of light from a high quality factor photonic crystal ring.

Nat Commun

Microsystems and Nanotechnology Division, Physical Measurement Laboratory, National Institute of Standards and Technology, Gaithersburg, MD, 20899, USA.

Published: February 2023

AI Article Synopsis

  • Twisted light with orbital angular momentum (OAM) is valuable for various applications like communications and microscopy, but current microresonators generating high OAM have significantly lower quality factors (Q) than traditional ones.
  • Through a new model that analyzes mode coupling in photonic crystal rings, researchers have achieved much higher Q values and improved understanding of limits on OAM ejection efficiency and potential.
  • This advancement not only enhances the performance of microresonator OAM generation but also paves the way for novel applications integrating OAM into chip-based technologies.

Article Abstract

Twisted light with orbital angular momentum (OAM) has been extensively studied for applications in quantum and classical communications, microscopy, and optical micromanipulation. Ejecting high angular momentum states of a whispering gallery mode (WGM) microresonator through a grating-assisted mechanism provides a scalable, chip-integrated solution for OAM generation. However, demonstrated OAM microresonators have exhibited a much lower quality factor (Q) than conventional WGM resonators (by >100×), and an understanding of the limits on Q has been lacking. This is crucial given the importance of Q in enhancing light-matter interactions. Moreover, though high-OAM states are often desirable, the limits on what is achievable in a microresonator are not well understood. Here, we provide insight on these two questions, through understanding OAM from the perspective of mode coupling in a photonic crystal ring and linking it to coherent backscattering between counter-propagating WGMs. In addition to demonstrating high-Q (10 to 10), a high estimated upper bound on OAM ejection efficiency (up to 90%), and high-OAM number (up to l = 60), our empirical model is supported by experiments and provides a quantitative explanation for the behavior of Q and the upper bound of OAM ejection efficiency with l. The state-of-the-art performance and understanding of microresonator OAM generation opens opportunities for OAM applications using chip-integrated technologies.

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Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC9971168PMC
http://dx.doi.org/10.1038/s41467-023-36589-8DOI Listing

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