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Trapped Ion Quantum Computing

Optical detection of the electron spin resonances of G centers in silicon

arXiv
Authors: Félix Cache, Krithika V. R., Tobias Herzig, Andrej Yu Kuznetsov, Sébastien Pezzagna, Marco Abbarchi, Isabelle Robert-Philip, Jean-Michel Gérard, Guillaume Cassabois, Vincent Jacques, Anaïs Dréau

Year

2026

Paper ID

60886

Status

Preprint

Abstract Read

~2 min

Abstract Words

152

Citations

0

Abstract

Color centers in silicon are emerging as promising platforms for quantum technologies. Among them, the G center has attracted considerable interest owing to its bright telecom O-band single-photon emission and its optically addressable metastable electron-spin triplet state. Here we investigate the spin properties of ensembles of G centers under above-band-gap excitation. We elucidate the spin photo-dynamics giving rise to the optical detected magnetic resonance (ODMR) response of G centers. The optimal pulsed sequence for measuring the ODMR spectrum of the G defects is identified, along with the temperature and optical-power regimes maximizing the spin readout contrast. Through magneto-optical measurements, we detect a level-anticrossing of the G center electron spin states. At last, we demonstrate coherent spin control of the defects, and characterize their spin-coherence properties. Unveiling the spin degree of freedom of the G center opens new avenues for the realization of quantum memories and quantum registers based on silicon color centers.

Why This Paper Matters

  • This paper contributes to the Trapped-Ion Quantum Computing research area in the Quantum Articles archive.
  • It adds a 2026 reference point for readers tracking recent quantum research.
  • Color centers in silicon are emerging as promising platforms for quantum technologies.

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