Dynamic control of Purcell enhanced emission of erbium ions in nanoparticles
arXiv:2001.08532 · doi:10.1038/s41467-021-23632-9
Abstract
The interaction of single quantum emitters with an optical cavity enables the realization of efficient spin-photon interfaces, an essential resource for quantum networks. The dynamical control of the spontaneous emission rate of quantum emitters in cavities has important implications in quantum technologies, e.g. for shaping the emitted photons waveform, for generating quantum entanglement, or for driving coherently the optical transition while preventing photon emission. Here we demonstrate the dynamical control of the Purcell enhanced emission of a small ensemble of erbium ions doped into nanoparticles. By embedding the doped nanoparticles into a fully tunable high finesse fiber based optical microcavity, we show that we can tune the cavity on- and out of-resonance by controlling its length with sub-nanometer precision, on a time scale more than two orders of magnitude faster than the natural lifetime of the erbium ions. This allows us to shape in real time the Purcell enhanced emission of the ions and to achieve full control over the emitted photons' waveforms. This capability opens prospects for the realization of efficient nanoscale quantum interfaces between solid-state spins and single telecom photons with controllable waveform, and for the realization of quantum gates between rare-earth ion qubits coupled to an optical cavity.
12 pages, 7 figures, submitted
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- Controlling single rare earth ion emission in an electro-optical nanocavity
- Ultra-bright single photon source based on an atomically thin material
- Spectral multiplexing of telecom emitters with stable transition frequency
- Dynamical decoupling of spin ensembles with strong anisotropic interactions
- Purcell enhancement of erbium ions in TiO on silicon nanocavities
- Detection of single ions in a nanoparticle coupled to a fiber cavity
- High quality-factor diamond-confined open microcavity
- Coherent Coupling of a Diamond Tin-Vacancy Center to a Tunable Open Microcavity
- Optical coherence properties of Kramers' rare-earth ions at the nanoscale for quantum applications
- Enhanced Purcell factor for nanoantennas supporting interfering resonances
- Scanning cavity microscopy of a single-crystal diamond membrane
- Realization of a crosstalk-free two-ion node for long-distance quantum networking
- Fabrication of Customized, Low-Loss Optical Resonators by Combination of FIB-Milling and CO Laser Ablation
- Time-resolved physical spectrum in cavity quantum electrodynamics
- Ultra-Sensitive Extinction Measurements of Optically Active Defects in Monolayer MoS
- Efficient integrated quantum memory for light
- Spectral stability of cavity-enhanced single-photon emitters in silicon
- Anisotropic resonance energy transfer with strained phosphorene
- A Low-Temperature Tunable Microcavity featuring High Passive Stability and Microwave Integration
- Purcell-enhanced optical refrigeration
- Quantum repeaters based on individual electron spins and nuclear-spin-ensemble memories in quantum dots
- Purcell Enhancement and Suppression in Laser Cooling of Yb:YLF Nanocrystals in a Fabry-Pérot Microcavity