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Trapped Ion Quantum Computing
Inhibited radiative decay enhances single-photon emitters
arXiv
Authors: Florian Burger, Stephan Rinner, Andreas Gritsch, Kilian Sandholzer, Andreas Reiserer
Year
2025
Paper ID
16491
Status
Preprint
Abstract Read
~2 min
Abstract Words
211
Citations
N/A
Abstract
Quantum networks and the modular scaling of quantum computers require efficient spin-photon interfaces. This can be achieved with optical resonators that increase the local density of states, thereby enhancing the radiative decay of emitters on a specific transition. However, small mode volumes and high quality factors are required in this approach, which restricts the multiplexing capacity and necessitates precise tuning of the resonator frequency. Here, we demonstrate an alternative method that avoids these bottlenecks for up-scaling. Instead of strongly enhancing the emission on a selected transition, we suppress all other radiative decay channels by tailoring the photonic bandgap of a W1 silicon photonic crystal waveguide. In such a device, we can spectrally resolve and individually address tens of erbium dopants. We find that their emission is channeled to the desired transition, ensuring efficient collection. At the same time, their lifetimes are preserved or even extended compared to the bulk in a broad spectral range. Furthermore, the extended mode volume facilitates a low dopant concentration and thus a large spatial separation between the emitters, avoiding unwanted interactions that would limit their coherence. The demonstrated approach of inhibiting unwanted spontaneous emission can be combined with Purcell enhancement and applied to other leading spin-qubit platforms. It thus opens intriguing perspectives for photonic quantum technologies.
Why This Paper Matters
- This paper contributes to the Trapped-Ion Quantum Computing research area in the Quantum Articles archive.
- It adds a 2025 reference point for readers tracking recent quantum research.
- Quantum networks and the modular scaling of quantum computers require efficient spin-photon interfaces.
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