Nanocavity-mediated Purcell enhancement of Er in TiO thin films grown via atomic layer deposition
arXiv:2309.13490
Abstract
The use of trivalent erbium (Er), typically embedded as an atomic defect in the solid-state, has widespread adoption as a dopant in telecommunications devices and shows promise as a spin-based quantum memory for quantum communication. In particular, its natural telecom C-band optical transition and spin-photon interface makes it an ideal candidate for integration into existing optical fiber networks without the need for quantum frequency conversion. However, successful scaling requires a host material with few intrinsic nuclear spins, compatibility with semiconductor foundry processes, and straightforward integration with silicon photonics. Here, we present Er-doped titanium dioxide (TiO) thin film growth on silicon substrates using a foundry-scalable atomic layer deposition process with a wide range of doping control over the Er concentration. Even though the as-grown films are amorphous, after oxygen annealing they exhibit relatively large crystalline grains, and the embedded Er ions exhibit the characteristic optical emission spectrum from anatase TiO. Critically, this growth and annealing process maintains the low surface roughness required for nanophotonic integration. Finally, we interface Er ensembles with high quality factor Si nanophotonic cavities via evanescent coupling and demonstrate a large Purcell enhancement (300) of their optical lifetime. Our findings demonstrate a low-temperature, non-destructive, and substrate-independent process for integrating Er-doped materials with silicon photonics. At high doping densities this platform can enable integrated photonic components such as on-chip amplifiers and lasers, while dilute concentrations can realize single ion quantum memories.
5 figures
References in corpus (17)
- Rare-Earth Molecular Crystals with Ultra-narrow Optical Linewidths for Photonic Quantum Technologies
- Indistinguishable telecom band photons from a single erbium ion in the solid state
- Parallel single-shot measurement and coherent control of solid-state spins below the diffraction limit
- Light-Matter Coupling in Scalable Van der Waals Superlattices
- A single-frequency single-resonator laser on erbium-doped lithium niobate on insulator
- Erbium dopants in silicon nanophotonic waveguides
- Erbium-Implanted Materials for Quantum Communication Applications
- Purcell enhancement of single-photon emitters in silicon
- Narrow optical transitions in erbium-implanted silicon waveguides
- Many-body cavity quantum electrodynamics with driven inhomogeneous emitters
- Coherent control of a nuclear spin via interactions with a rare-earth ion in the solid-state
- Purcell enhancement of erbium ions in TiO on silicon nanocavities
- Characterization of Er:YVO for microwave to optical transduction
- Theory of Microwave-Optical Conversion Using Rare-Earth Ion Dopants
- Development of a Scalable Quantum Memory Platform -- Materials Science of Erbium-Doped TiO Thin Films on Silicon
- Investigation of photon emitters in Ce-implanted hexagonal boron nitride
- Anomalous Purcell decay of strongly driven inhomogeneous emitters coupled to a cavity