| Literature DB >> 35831600 |
Daniel B Higginbottom1, Alexander T K Kurkjian1,2, Camille Chartrand1,2, Moein Kazemi1, Nicholas A Brunelle1, Evan R MacQuarrie1,2, James R Klein1, Nicholas R Lee-Hone1,2, Jakub Stacho1, Myles Ruether1, Camille Bowness1,2, Laurent Bergeron1, Adam DeAbreu1, Stephen R Harrigan1, Joshua Kanaganayagam1, Danica W Marsden1, Timothy S Richards1, Leea A Stott1, Sjoerd Roorda3, Kevin J Morse1,2, Michael L W Thewalt1, Stephanie Simmons4,5.
Abstract
The global quantum internet will require long-lived, telecommunications-band photon-matter interfaces manufactured at scale1. Preliminary quantum networks based on photon-matter interfaces that meet a subset of these demands are encouraging efforts to identify new high-performance alternatives2. Silicon is an ideal host for commercial-scale solid-state quantum technologies. It is already an advanced platform within the global integrated photonics and microelectronics industries, as well as host to record-setting long-lived spin qubits3. Despite the overwhelming potential of the silicon quantum platform, the optical detection of individually addressable photon-spin interfaces in silicon has remained elusive. In this work, we integrate individually addressable 'T centre' photon-spin qubits in silicon photonic structures and characterize their spin-dependent telecommunications-band optical transitions. These results unlock immediate opportunities to construct silicon-integrated, telecommunications-band quantum information networks.Entities:
Year: 2022 PMID: 35831600 DOI: 10.1038/s41586-022-04821-y
Source DB: PubMed Journal: Nature ISSN: 0028-0836 Impact factor: 69.504