Coupling of deterministically activated quantum emitters in hexagonal boron nitride to plasmonic surface lattice resonances
arXiv:1909.02648 · doi:10.1515/nanoph-2019-0136
Abstract
Cooperative phenomena stemming from radiation-field-mediated coupling between individual quantum emitters are presently attracting broad interest for on-chip photonic quantum memories and long-range entanglement. Common to these applications is the generation of electromagnetic modes over macroscopic distances. Much research, however, is still needed before such systems can be deployed in the form of practical devices, starting with the investigation of alternate physical platforms. Quantum emitters in two-dimensional (2D) systems provide an intriguing route because these materials can be adapted to arbitrarily shaped substrates to form hybrid systems where emitters are near-field-coupled to suitable optical modes. Here, we report a scalable coupling method allowing color center ensembles in a van der Waals material - hexagonal boron nitride - to couple to a delocalized high quality plasmonic surface lattice resonance. This type of architecture is promising for photonic applications, especially given the ability of the hexagonal boron nitride emitters to operate as single-photon sources at room temperature.
8 pages, 4 Figures
References in corpus (10)
- Magic-angle graphene superlattices: a new platform for unconventional superconductivity
- Room-Temperature Quantum Hall Effect in Graphene
- Strong light-matter coupling in two-dimensional atomic crystals
- Photon-mediated interactions between quantum emitters in a diamond nanocavity
- Deterministic coupling of site-controlled quantum emitters in monolayer semiconductors to plasmonic nanocavities
- Defect-related photoluminescence of hexagonal boron nitride
- Space-compatible cavity-enhanced single-photon generation with hexagonal boron nitride
- Radiative enhancement of single quantum emitters in WSe2 monolayers using site-controlled metallic nano-pillars
- Exciton condensate in bilayer transition metal dichalcogenides: strong coupling regime
- Single Photon Emitters in Boron Nitride: More Than a Supplementary Material
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- Scalable and Deterministic Fabrication of Quantum Emitter Arrays from Hexagonal Boron Nitride
- Wide-field spectral super-resolution mapping of optically active defects in hBN
- Scalable single-photon sources in atomically thin MoS2
- Coupling spin defects in hexagonal boron nitride to monolithic bullseye cavities
- Blue-Light-Emitting Color Centers in High-Quality Hexagonal Boron Nitride
- Quantum well stabilized point defect spin qubits
- Atomic Localization of Quantum Emitters in Multilayer Hexagonal Boron Nitride
- Polarization and localization of single-photon emitters in hexagonal boron nitride wrinkles
- Photochromism in a Hexagonal Boron Nitride Single Photon Emitter
- Direct visualization and effects of atomic-scale defects on the optoelectronic properties of hexagonal boron nitride
- Investigation of photon emitters in Ce-implanted hexagonal boron nitride