Optical meta-waveguides for integrated photonics and beyond
Оптические мета-волноводы для интегральной фотоники и не только
2021-11-22
SCID: 54.1/et3wyay6
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inverse designlight–matter interactionmetasurfaces and metamaterialsoptical meta-waveguidesphotonic integrated circuits
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Abstract (AI)
The growing maturity of nanofabrication has ushered massive sophisticated optical structures available on a photonic chip. The integration of subwavelength-structured metasurfaces and metamaterials on the canonical building block of optical waveguides is gradually reshaping the landscape of photonic integrated circuits, giving rise to numerous meta-waveguides with unprecedented strength in controlling guided electromagnetic waves. Here, we review recent advances in meta-structured waveguides that synergize various functional subwavelength photonic architectures with diverse waveguide platforms, such as dielectric or plasmonic waveguides and optical fibers. Foundational results and representative applications are comprehensively summarized. Brief physical models with explicit design tutorials, either physical intuition-based design methods or computer algorithms-based inverse designs, are cataloged as well. We highlight how meta-optics can infuse new degrees of freedom to waveguide-based devices and systems, by enhancing light-matter interaction strength to drastically boost device performance, or offering a versatile designer media for manipulating light in nanoscale to enable novel functionalities. We further discuss current challenges and outline emerging opportunities of this vibrant field for various applications in photonic integrated circuits, biomedical sensing, artificial intelligence and beyond.
Key Findings
1
Integrating subwavelength metasurfaces and metamaterials with optical waveguides enables unprecedented control over guided electromagnetic waves.
2
Meta-optics introduces additional design degrees of freedom that strengthen light–matter interactions and can substantially improve device performance.
3
Meta-waveguides combine functional subwavelength architectures with dielectric, plasmonic, and fiber-based waveguide platforms.
4
Meta-waveguides enable nanoscale manipulation of light, supporting novel functionalities and applications in integrated photonics, biomedical sensing, and artificial intelligence.
5
The field includes both intuition-based physical design and computer-based inverse-design methods, while facing ongoing challenges and emerging opportunities.
Research Object
meta-structured optical waveguides integrated with subwavelength metasurfaces and metamaterials on photonic-chip and fiber platforms
Research Subject
control and enhancement of guided electromagnetic waves, including strengthened light–matter interaction and nanoscale light manipulation for improved device performance and novel photonic functionalities
Publication Details
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2021-11-22
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