Color centers in hexagonal boron nitride (hBN) are becoming an increasingly important building block for quantum photonic applications. Herein, we demonstrate the efficient coupling of recently discovered spin defects in hBN to purposely designed bullseye cavities. We show that boron vacancy spin defects couple to the monolithic hBN cavity system and exhibit a 6.5-fold enhancement. In addition, by comparative finite-difference time-domain modeling, we shed light on the emission dipole orientation, which has not been experimentally demonstrated at this point. Beyond that, the coupled spin system exhibits an enhanced contrast in optically detected magnetic resonance readout and improved signal-to-noise ratio. Thus, our experimental results, s...
Spin defects existing in van der Waals materials attract wide attention thanks to their natural adva...
Spin defects in two-dimensional materials potentially offer unique advantages for quantum sensing in...
Development of scalable quantum photonic technologies requires on-chip integration of photonic compo...
The negatively charged boron vacancy (VB–) defect in hexagonal boron nitride (hBN) with optically ad...
The negatively charged boron vacancy (VB-) spin defect in two-dimensional (2D) hexagonal boron nitri...
Optically addressable spins in materials are important platforms for quantum technologies, such as r...
© 2020, The Author(s), under exclusive licence to Springer Nature Limited. Optically addressable spi...
Spin defects in hexagonal boron nitride (hBN) are promising quantum systems for the design of flexib...
Optically active spin defects in wide-bandgap materials have many potential applications in quantum ...
Defect centers in two-dimensional hexagonal boron nitride (hBN) are drawing attention as single-phot...
Defect centers in two-dimensional hexagonal boron nitride (hBN) are drawing attention as single phot...
This is the author accepted manuscript. The final version is available from the American Chemical So...
Optically addressable spins associated with defects in wide-bandgap semiconductors are versatile pla...
Optically active spin defects are promising candidates for solid-state quantum information and sensi...
Hexagonal boron nitride (hBN) has emerged as a promising two-dimensional (2D) material for photonics...
Spin defects existing in van der Waals materials attract wide attention thanks to their natural adva...
Spin defects in two-dimensional materials potentially offer unique advantages for quantum sensing in...
Development of scalable quantum photonic technologies requires on-chip integration of photonic compo...
The negatively charged boron vacancy (VB–) defect in hexagonal boron nitride (hBN) with optically ad...
The negatively charged boron vacancy (VB-) spin defect in two-dimensional (2D) hexagonal boron nitri...
Optically addressable spins in materials are important platforms for quantum technologies, such as r...
© 2020, The Author(s), under exclusive licence to Springer Nature Limited. Optically addressable spi...
Spin defects in hexagonal boron nitride (hBN) are promising quantum systems for the design of flexib...
Optically active spin defects in wide-bandgap materials have many potential applications in quantum ...
Defect centers in two-dimensional hexagonal boron nitride (hBN) are drawing attention as single-phot...
Defect centers in two-dimensional hexagonal boron nitride (hBN) are drawing attention as single phot...
This is the author accepted manuscript. The final version is available from the American Chemical So...
Optically addressable spins associated with defects in wide-bandgap semiconductors are versatile pla...
Optically active spin defects are promising candidates for solid-state quantum information and sensi...
Hexagonal boron nitride (hBN) has emerged as a promising two-dimensional (2D) material for photonics...
Spin defects existing in van der Waals materials attract wide attention thanks to their natural adva...
Spin defects in two-dimensional materials potentially offer unique advantages for quantum sensing in...
Development of scalable quantum photonic technologies requires on-chip integration of photonic compo...