DOE OSTI · 2367245
Programmable quantum emitter formation in silicon
Abstract
Abstract Silicon-based quantum emitters are candidates for large-scale qubit integration due to their single-photon emission properties and potential for spin-photon interfaces with long spin coherence times. Here, we demonstrate local writing and erasing of selected light-emitting defects using femtosecond laser pulses in combination with hydrogen-based defect activation and passivation at a single center level. By choosing forming gas (N 2 /H 2 ) during thermal annealing of carbon-implanted silicon, we can select the formation of a series of hydrogen and carbon-related quantum emitters, including T and C i centers while passivating the more common G-centers. The C i center is a telecom S-band emitter with promising optical and spin properties that consists of a single interstitial carbon atom in the silicon lattice. Density functional theory calculations show that the C i center brightness is enhanced by several orders of magnitude in the presence of hydrogen. Fs-laser pulses locally affect the passivation or activation of quantum emitters with hydrogen for programmable formation of selected quantum emitters.
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Jhuria, K. (ORCID:000000019270749X), Ivanov, V., Polley, D., Zhiyenbayev, Y., Liu, W. (ORCID:0000000286374876), Persaud, A. (ORCID:0000000331868358), Redjem, W., Qarony, W., Parajuli, P., Ji, Q., Gonsalves, A. J., Bokor, J. (ORCID:0000000245410156), Tan, L. Z. (ORCID:0000000347246369), Kanté, B. (ORCID:0000000156334163), Schenkel, T. (ORCID:0000000340469252). 2024-05-27. Programmable quantum emitter formation in silicon. https://doi.org/10.1038/s41467-024-48714-2
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