The consortium partners have made substantial progress on all aspects of the project. The key results of this first period are:
• Discovery of chlorine-related spin centres in silicon carbide
A novel family of defects, which result from chlorine implantation, has been identified. Their optical zero-phonon line transitions range from 1.35 µm to 1.56 µm, spanning the telecom domain. They are strong candidates for fast single-photon sources due to their fast optical transitions with sub-ns lifetimes. Their spin properties are under intense scrutiny. Partners LIU and HZDR have provided first reports on their properties in
A.N. Anisimov, A.V. Mathews, K. Mavridou, U. Kentsch, M. Helm, G.V. Astakhov,
“Engineering chlorine-based emitters in silicon carbide for telecom-band quantum technologies,”
Opt. Express 33 (2025) 54285.
https://doi.org/10.1364/OE.581705(öffnet in neuem Fenster).
A.N. Anisimov, K. Mavridou, A.V. Mathews, M. Helm, G.V. Astakhov,
“Telecom-band quantum memory with chlorine defects in silicon carbide”, (2026).
https://doi.org/10.48550/ARXIV.2605.03717(öffnet in neuem Fenster).
D. Shafizadeh, M. Ghezellou, V.M. Bobal, L. Vines, J. Ul-Hassan, V. Jokubavicius, N.T. Son, I.G. Ivanov, “Spin-active chlorine-related centers in 4H-SiC with telecom-band emissions,”
(2026).
https://doi.org/10.48550/arXiv.2602.08854(öffnet in neuem Fenster).
• Creation of spin centres by highly precise, localized implantation
Implantation masks formed by electron beam lithography have been fabricated on bespoke SiC substrates from within the consortium. The masks allow to reach positioning precision on the order of 50 nm, including straggle, which is Implantation through such masks has been performed with both chlorine and vanadium atoms.
• Design and fabrication of a first photonic integrated circuit for photon routing
The consortium partners have designed and created a first prototype waveguide circuit which allows to route the photonic signals to and from twelve sites in the network.
• Assembly of a chip stack containing a SiC membrane doped with vanadium
The stack forms a Fabry-Pérot microcavity with a high-performance concave silicon micromirror and is coupled directly to telecom optical fibers.
• Definition of core benchmarks and their relation to physical properties of the spin centres
The key performance indicators of the envisaged network have been defined, allowing to calculate informed projections for the entanglement rates and enabling focused optimization of the system properties.