Pyramidal Hyperbolic Metasurfaces Enhance Spontaneous Emission of Nitrogen‐Vacancy Centers in Nanodiamond
Пирамидальные гиперболические метаповерхности усиливают спонтанное излучение азотно-вакансионных центров в нанокристалле алмаза
2023-01-17
SCID: 54.1/jcqe8t8g
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Purcell enhancementnanosphere lithographynitrogen-vacancy centerspyramidal hyperbolic metasurfacesspontaneous emission
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Abstract (AI)
Nitrogen-vacancy (NV) centers in nanodiamond hold great promise for creating superior biological labels and quantum sensing methods. Yet, inefficient photon generation and extraction from excited NV centers restricts the achievable sensitivity and temporal resolution. Herein, we report an entirely complementary route featuring pyramidal hyperbolic metasurface to modify the spontaneous emission of NV centers. Fabricated using nanosphere lithography, the metasurface consists of alternatively stacked silica-silver thin films configured in a pyramidal fashion, and supports both spectrally broadband Purcell enhancement and spatially extended intense local fields owing to the hyperbolic dispersion and plasmonic coupling. The enhanced photophysical properties are manifested as a simultaneous amplification to the spontaneous decay rate and emission intensity of NV centers. We envision the reported pyramidal metasurface could serve as a versatile platform for creating chip-based ultrafast single-photon sources and spin-enhanced quantum biosensing strategies, as well as aiding in further fundamental understanding of photoexcited species in condensed phases.
Key Findings
1
A pyramidal hyperbolic metasurface was developed to modify and enhance spontaneous emission from nitrogen-vacancy centers in nanodiamonds.
2
Hyperbolic dispersion and plasmonic coupling provide broadband Purcell enhancement and spatially extended intense local electromagnetic fields.
3
The metasurface simultaneously increases NV-center spontaneous decay rates and emission intensity.
4
The metasurface uses alternating silica–silver thin films arranged pyramically and is fabricated through nanosphere lithography.
5
The platform may enable chip-based ultrafast single-photon sources and spin-enhanced quantum biosensing strategies.
Research Object
nitrogen-vacancy centers in nanodiamond coupled to a pyramidal hyperbolic metasurface
Research Subject
modification and enhancement of spontaneous emission, including spontaneous decay rate and emission intensity
Publication Details
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2023-01-17
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