Bright Telecom Spin-Photon Interface in Silicon Photonics
Abstract
Silicon is an attractive host for scalable quantum photonics, but the absence of bright telecom-band emitters with optically addressable spin states has limited its use for spin-photon interfaces. Here we demonstrate the Al1-center, an aluminum--carbon defect in silicon, as a bright waveguide-integrated single-photon emitter with a ground-state spin. Using isotopically purified silicon-on-insulator nanophotonic devices, we isolate individual Al1-centers and observe high-purity single-photon emission with without background subtraction. Time-resolved photoluminescence spectroscopy reveals a fast excited-state lifetime of 135 ns, nearly an order of magnitude shorter than the benchmark provided by the well-studied T-center. Resonant photoluminescence excitation measurements further resolve the zero-phonon transition and reveal a narrow homogeneous linewidth reaching 47 MHz, threefold narrower than the T-center under comparable temperature. Through magneto-optical spectroscopy, we resolve the spin-dependent transitions of the bound-exciton manifold and achieve spin-selective optical pumping, fulfilling the prerequisite for quantum state initialization and readout. These results establish the Al1-center as a bright telecom-band spin-photon interface in silicon photonics and introduce a promising platform for integrated quantum networks.
Cite
@article{arxiv.2607.18435,
title = {Bright Telecom Spin-Photon Interface in Silicon Photonics},
author = {Carolina Crosta and Amirehsan Alizadehherfati and Purbita Purkayastha and Kyu-Young Kim and Jasvith Raj Basani and Chang-Min Lee and Fabio Pezzoli and Edo Waks},
journal= {arXiv preprint arXiv:2607.18435},
year = {2026}
}