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Identification and tunable optical coherent control of transition-metal spins in silicon carbide

Bosma, Tom (author)
Univ Groningen, Netherlands
Lof, Gerrit J. J. (author)
Univ Groningen, Netherlands
Gilardoni, Carmem M. (author)
Univ Groningen, Netherlands
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Zwier, Olger V (author)
Univ Groningen, Netherlands
Hendriks, Freddie (author)
Univ Groningen, Netherlands
Magnusson, Björn (author)
Linköpings universitet,Halvledarmaterial,Tekniska fakulteten,Norstel AB, Sweden
Ellison, Alexandre (author)
Norstel AB, Sweden
Gällström, Andreas (author)
Linköpings universitet,Halvledarmaterial,Tekniska fakulteten,Saab Dynam AB, SE-58188 Linkoping, Sweden
Ivanov, Ivan Gueorguiev (author)
Linköpings universitet,Halvledarmaterial,Tekniska fakulteten
Nguyen, Son Tien (author)
Linköpings universitet,Halvledarmaterial,Tekniska fakulteten
Havenith, Remco W. A. (author)
Univ Groningen, Netherlands; Univ Groningen, Netherlands; Univ Ghent, Belgium
van der Wal, Caspar H. (author)
Univ Groningen, Netherlands
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 (creator_code:org_t)
2018-10-01
2018
English.
In: NPJ QUANTUM INFORMATION. - : SPRINGERNATURE. - 2056-6387. ; 4
  • Journal article (peer-reviewed)
Abstract Subject headings
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  • Color centers in wide-bandgap semiconductors are attractive systems for quantum technologies since they can combine long-coherent electronic spin and bright optical properties. Several suitable centers have been identified, most famously the nitrogen-vacancy defect in diamond. However, integration in communication technology is hindered by the fact that their optical transitions lie outside telecom wavelength bands. Several transition-metal impurities in silicon carbide do emit at and near telecom wavelengths, but knowledge about their spin and optical properties is incomplete. We present all-optical identification and coherent control of molybdenum-impurity spins in silicon carbide with transitions at near-infrared wavelengths. Our results identify spin S= 1/2 for both the electronic ground and excited state, with highly anisotropic spin properties that we apply for implementing optical control of ground-state spin coherence. Our results show optical lifetimes of similar to 60 ns and inhomogeneous spin dephasing times of similar to 0.3 mu S, establishing relevance for quantum spin-photon interfacing.

Subject headings

NATURVETENSKAP  -- Fysik -- Atom- och molekylfysik och optik (hsv//swe)
NATURAL SCIENCES  -- Physical Sciences -- Atom and Molecular Physics and Optics (hsv//eng)

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