Back to Search Start Over

Erbium-implanted materials for quantum communication applications

Authors :
Paul Stevenson
Christopher M. Phenicie
Isaiah Gray
Sebastian P. Horvath
Sacha Welinski
Austin M. Ferrenti
Alban Ferrier
Philippe Goldner
Sujit Das
Ramamoorthy Ramesh
Robert J. Cava
Nathalie P. de Leon
Jeff D. Thompson
Source :
Physical Review B. 105
Publication Year :
2022
Publisher :
American Physical Society (APS), 2022.

Abstract

Erbium-doped materials can serve as spin-photon interfaces with optical transitions in the telecom C-band, making them an exciting class of materials for long-distance quantum communication. However, the spin and optical coherence times of Er3+ ions are limited by currently available host materials, motivating the development of new Er3+-containing materials. Here, we demonstrate the use of ion implantation to efficiently screen prospective host candidates, and show that disorder introduced by ion implantation can be mitigated through post-implantation thermal processing to achieve inhomogeneous linewidths comparable to bulk linewidths in as-grown samples. We present optical spectroscopy data for each host material, which allows us to determine the level structure of each site, allowing us to compare the environments of Er3+ introduced via implantation and via doping during growth. We demonstrate that implantation can generate a range of local environments for Er3+, including those observed in bulk-doped materials, and that the populations of these sites can be controlled with thermal processing.

Details

ISSN :
24699969 and 24699950
Volume :
105
Database :
OpenAIRE
Journal :
Physical Review B
Accession number :
edsair.doi.dedup.....5e6933a19a04e1b4bfacd7b181203570
Full Text :
https://doi.org/10.1103/physrevb.105.224106