Scalable manufacturing of quantum light emitters in silicon under rapid thermal annealing

Author:

Zhiyenbayev Yertay1,Redjem Walid1,Ivanov Vsevolod2,Qarony Wayesh1,Papapanos Christos1ORCID,Simoni Jacopo2,Liu Wei2,Jhuria Kaushalya2,Tan Liang Z.2,Schenkel Thomas2,Kanté Boubacar12

Affiliation:

1. University of California

2. Lawrence Berkeley National Laboratory

Abstract

Quantum light sources play a fundamental role in quantum technologies ranging from quantum networking to quantum sensing and computation. The development of these technologies requires scalable platforms, and the recent discovery of quantum light sources in silicon represents an exciting and promising prospect for scalability. The usual process for creating color centers in silicon involves carbon implantation into silicon, followed by rapid thermal annealing. However, the dependence of critical optical properties, such as the inhomogeneous broadening, the density, and the signal-to-background ratio, on centers implantation steps is poorly understood. We investigate the role of rapid thermal annealing on the dynamic of the formation of single color centers in silicon. We find that the density and the inhomogeneous broadening greatly depend on the annealing time. We attribute the observations to nanoscale thermal processes occurring around single centers and leading to local strain fluctuations. Our experimental observation is supported by theoretical modeling based on first principles calculations. The results indicate that annealing is currently the main step limiting the scalable manufacturing of color centers in silicon.

Funder

National Science Foundation

Gordon and Betty Moore Foundation

U.S. Department of Energy

Publisher

Optica Publishing Group

Subject

Atomic and Molecular Physics, and Optics

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