High resolution, High contrast optical interface for defect qubits
arXiv:2102.07046 · doi:10.1021/acsphotonics.1c00576
Abstract
Point defects in crystals provide important building blocks for quantum applications. To initialize, control, and read-out their quantum states, an efficient optical interface for addressing defects with photons is required. However, conventional confocal fluorescence microscopy with high refractive index crystals has limited photon collection efficiency and spatial resolution. Here, we demonstrate high resolution, high contrast imaging for defects qubits using microsphere-assisted confocal microscopy. A microsphere provides an excellent optical interface for point defects with a magnified virtual image that improves spatial resolution up to ~/5 as well as an optical signal-to-noise ratio by four times. These features enable individual optical addressing of single photons and single spins of spatially-unresolved defects in conventional confocal microscopy with improved signal contrast. The combined optical tweezers show the possibility of positioning or scanning the microspheres for deterministic coupling and wide-field imaging of defects. The approach does not require any complicated fabrication and additional optical system but uses simple micro-optics off-the-shelf. From these distinctive advantages of the microspheres, our approach can provide an efficient way for imaging and addressing closely-spaced defects with higher resolution and sensitivity.
20 pages, 5 figures
References in corpus (9)
- High-fidelity projective readout of a solid-state spin quantum register
- Scalable quantum register based on coupled electron spins in a room temperature solid
- Sub-millihertz magnetic spectroscopy with a nanoscale quantum sensor
- Strongly enhanced photon collection from diamond defect centres under micro-fabricated integrated solid immersion lenses
- Three megahertz photon collection rate from an NV center with millisecond spin coherence
- Integrated Diamond Optics for Single Photon Detection
- Microscopic diamond Solid-Immersion-Lenses fabricated around single defect ceneters by focussed ion beam milling
- Nanopositioning of a diamond nanocrystal containing a single NV defect center
- Inverse-designed photon extractors for optically addressable defect qubits