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Harnessing the Diamond-Air Interface as an Efficient Photon Antenna for Solid-State Emitters
Paul Weinbrenner1,2, Aina Lopez Benet1, İdil Gözel1
1Institute for Physics, University of Rostock, 18059 Rostock, Germany.
Nano Letters
|January 14, 2026
Summary
Photon extraction from diamond defect centers is improved using oil-immersion optics, achieving high count rates without complex nanofabrication. This method utilizes a dielectric antenna effect for efficient light collection.
Area of Science:
- Quantum optics
- Materials science
- Solid-state physics
Background:
- Extracting photons from diamond defect centers, like nitrogen-vacancy (NV) centers, is difficult due to substrate refractive index.
- High saturation count rates (>2.5 × 10⁵ counts/s) typically necessitate complex nanofabricated optics (e.g., waveguides, solid immersion lenses).
Purpose of the Study:
- Investigate defect center emission from unmodified planar dielectric surfaces.
- Explore alternative methods for efficient photon collection without nanofabrication.
- Develop a novel method for measuring quantum efficiency of shallow defect centers.
Main Methods:
- Quantitative back-focal-plane imaging.
- Analytical modeling of light emission.
- Oil-immersion microscopy for enhanced collection.
Main Results:
- Achieved photon count rates comparable to nanofabricated optics using oil-immersion and unmodified surfaces.
- Identified a dielectric antenna effect enhancing emission into the substrate within a specific angle.
- Quantified back-side collection efficiency, enabling a new quantum efficiency measurement.
Conclusions:
- Oil-immersion optics can achieve high photon extraction rates from defect centers on planar surfaces, rivaling nanofabricated solutions.
- The dielectric antenna effect is key to efficient light redirection for back-side collection.
- The novel quantum efficiency measurement challenges existing values for shallow defect centers.
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