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High-Q Metamaterial Resonator Different from the Crowd

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A new nanophotonic resonator efficiently traps light by exploiting a quantum phenomenon called bound states in the continuum (BIC).

Researchers at the University of California, San Diego, said the metamaterial cavity could enable optical computing circuits and switches, as well as biosensors and compact solar cells.

The device marks the first time BIC has been observed in metamaterials, and contains even smaller cavities than photonic crystals, said professor Dr. Boubacar Kante.

Boubacar Kante, left, and Thomas Lepetit
Professor Dr. Boubacar Kante, left, and postdoctoral researcher Thomas Lepetit have used a phenomenon called bound states in the continuum to trap light inside a metamaterial resonator. Courtesy of the UC San Diego Jacobs School of Engineering.


Most current nanocavities have relatively low quality factors, meaning there are multiple ways for photons to escape them. The new nanocavity, rather than trying limit the size and number of passages where light can escape, approaches the problem from a different angle.

It consists of a rectangular metal waveguide and ceramic light scatterer that produce destructive interferences for the light waves inside. Light is allowed to escape, but the multiple waves that do so end up cancelling each other out.

Multiple bound states can exist in the system, which makes the light trap more robust and less vulnerable to outside disruptions than other cavities to date.

The research was funded in part by a grant from the Qualcomm Institute at UC San Diego.

The findings were published in Physical Review B (doi: 10.1103/PhysRevB.90.241103).

For more information, visit www.ucsd.edu.
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Published: December 2014
Glossary
nanophotonics
Nanophotonics is a branch of science and technology that explores the behavior of light on the nanometer scale, typically at dimensions smaller than the wavelength of light. It involves the study and manipulation of light using nanoscale structures and materials, often at dimensions comparable to or smaller than the wavelength of the light being manipulated. Aspects and applications of nanophotonics include: Nanoscale optical components: Nanophotonics involves the design and fabrication of...
resonator
A resonator is a device or system that exhibits resonance, which is a phenomenon that occurs when an external force or stimulus is applied at a specific frequency, causing the system to oscillate with increased amplitude. Resonators are found in various fields and can take different forms depending on the type of waves involved, such as mechanical waves, acoustic waves, electromagnetic waves, or optical waves. Key points about resonators: Resonance: Resonance is a condition where a...
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