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Cavity modes with optical orbital angular momentum in a metamaterial ring based on transformation optics
Author(s) -
Hangzhi Wu,
Fan Wang,
Yi Dong,
Fangjie Shu,
Kaixin Zhang,
RuWen Peng,
Xiang Xiong,
Mu Wang
Publication year - 2015
Publication title -
optics express
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 1.394
H-Index - 271
ISSN - 1094-4087
DOI - 10.1364/oe.23.032087
Subject(s) - physics , angular momentum , angular momentum of light , orbital angular momentum of light , orbital angular momentum multiplexing , optics , metamaterial , azimuthal quantum number , optical vortex , total angular momentum quantum number , angular momentum coupling , classical mechanics
In this work, we theoretically study the cavity modes with transverse orbital angular momentum in metamaterial ring based on transformation optics. The metamaterial ring is designed to transform the straight trajectory of light into the circulating one by enlarging the azimuthal angle, effectively presenting the modes with transverse orbital angular momentum. The simulation results confirm the theoretical predictions, which state that the transverse orbital angular momentum of the mode not only depends on the frequency of the incident light, but also depends on the transformation scale of the azimuthal angle. Because energy dissipation inevitably reduces the field amplitude of the modes, the confined electromagnetic energy and the quality factor of the modes inside the ring are also studied in order to evaluate the stability of those cavity modes. The results show that the metamaterial ring can effectively confine light with a high quality factor and maintain steady modes with the orbital angular momentum, even if the dimension of the ring is much smaller than the wavelength of the incident light. This technique for exploiting the modes with optical transverse orbital angular momentum may provides a unique platform for applications related to micromanipulation.

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