Scalable Quantum Photonics with Single Color Centers in Silicon Carbide
Abstract
Silicon carbide is a promising platform for single photon sources, quantum bits (qubits) and nanoscale sensors based on individual color centers. Towards this goal, we develop a scalable array of nanopillars incorporating single silicon vacancy centers in 4H-SiC, readily available for efficient interfacing with free-space objective and lensed-fibers. A commercially obtained substrate is irradiated with 2 MeV electron beams to create vacancies. Subsequent lithographic process forms 800 nm tall nanopillars with 400-1,400 nm diameters. We obtain high collection efficiency, up to 22 kcounts/s optical saturation rates from a single silicon vacancy center, while preserving the single photon emission and the optically induced electron-spin polarization properties. Our study demonstrates silicon carbide as a readily available platform for scalable quantum photonics architecture relying on single photon sources and qubits.
Keywords
Cite
@article{arxiv.1612.02874,
title = {Scalable Quantum Photonics with Single Color Centers in Silicon Carbide},
author = {Marina Radulaski and Matthias Widmann and Matthias Niethammer and Jingyuan Linda Zhang and Sang-Yun Lee and Torsten Rendler and Konstantinos G. Lagoudakis and Nguyen Tien Son and Erik Janzén and Takeshi Ohshima and Jörg Wrachtrup and Jelena Vučković},
journal= {arXiv preprint arXiv:1612.02874},
year = {2017}
}
Comments
18 pages, 8 figures