Isolation of individual Er quantum emitters in anatase TiO2 on Si photonics

Author:

Ji Cheng12ORCID,Pettit Robert M.3ORCID,Gupta Shobhit3ORCID,Grant Gregory D.12ORCID,Masiulionis Ignas12ORCID,Sundaresh Ananthesh3ORCID,Deckoff–Jones Skylar3ORCID,Olberding Max3ORCID,Singh Manish K.3ORCID,Heremans F. Joseph124ORCID,Guha Supratik124ORCID,Dibos Alan M.45ORCID,Sullivan Sean E.3ORCID

Affiliation:

1. Pritzker School of Molecular Engineering, University of Chicago 1 , Chicago, Illinois 60637, USA

2. Materials Science Division, Argonne National Laboratory 2 , Lemont, Illinois 60439, USA

3. memQ Inc 3 ., Chicago, Illinois 60615, USA

4. Center for Molecular Engineering, Argonne National Laboratory 4 , Lemont, Illinois 60439, USA

5. Q-NEXT, Argonne National Laboratory 5 , Lemont, Illinois 60439, USA

Abstract

Defects and dopant atoms in solid state materials are a promising platform for realizing single photon sources and quantum memories, which are the basic building blocks of quantum repeaters needed for long distance quantum networks. In particular, trivalent erbium (Er3+) is of interest because it couples C-band telecom optical transitions with a spin-based memory platform. In order to produce quantum repeaters at the scale required for quantum networks it is imperative to integrate these necessary building blocks with mature and scalable semiconductor processes. In this work, we demonstrate the optical isolation of single Er3+ ions in CMOS-compatible titanium dioxide (TiO2) thin films monolithically integrated on a silicon-on-insulator photonics platform. Our results demonstrate an initial step toward the realization of a monolithically integrated and scalable quantum photonics package based on Er3+ doped thin films.

Funder

U.S. Department of Energy

Publisher

AIP Publishing

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