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Temperature-dependent zero-field splittings in graphene

Bray, C. (author)
Laboratoire Charles Coulomb
Maussang, K. (author)
Consejo, C. (author)
Laboratoire Charles Coulomb
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Delgado-Notario, J. A. (author)
Universidad de Salamanca,University of Salamanca,Polish Academy of Sciences
Krishtopenko, S. (author)
Laboratoire Charles Coulomb
Yahniuk, I. (author)
Polish Academy of Sciences,Universität Regensburg,University of Regensburg
Gebert, S. (author)
Laboratoire Charles Coulomb
Ruffenach, S. (author)
Laboratoire Charles Coulomb
Dinar, K. (author)
Laboratoire Charles Coulomb
Moench, E. (author)
Universität Regensburg,University of Regensburg
Eroms, J. (author)
Universität Regensburg,University of Regensburg
Indykiewicz, Kornelia (author)
Politechnika Wrocławska,Wrocław University of Science and Technology
Jouault, B. (author)
Laboratoire Charles Coulomb
Torres, J. (author)
Meziani, Y. M. (author)
Universidad de Salamanca,University of Salamanca
Knap, W. (author)
Polish Academy of Sciences
Yurgens, Avgust, 1959 (author)
Chalmers tekniska högskola,Chalmers University of Technology
Ganichev, S.D. (author)
Polish Academy of Sciences,Universität Regensburg,University of Regensburg
Teppe, F. (author)
Laboratoire Charles Coulomb,Polish Academy of Sciences
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 (creator_code:org_t)
2022
2022
English.
In: Physical Review B. - 2469-9969 .- 2469-9950. ; 106:24
  • Journal article (peer-reviewed)
Abstract Subject headings
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  • Graphene is a quantum spin Hall insulator with a 45μeV-wide nontrivial topological gap induced by the intrinsic spin-orbit coupling. Even though this zero-field spin splitting is weak, it makes graphene an attractive candidate for applications in quantum technologies, given the resulting long spin-relaxation time. On the other side, the staggered sublattice potential, resulting from the coupling of graphene with its boron nitride substrate, compensates intrinsic spin-orbit coupling and decreases the nontrivial topological gap, which may lead to the phase transition into trivial band insulator state. In this work, we present extensive experimental studies of the zero-field splittings in monolayer and bilayer graphene in a temperature range 2-12 K by means of subterahertz photoconductivity-based electron spin-resonance technique. Surprisingly, we observe a decrease of the spin splittings with increasing temperature. We discuss the origin of this phenomenon by considering possible physical mechanisms likely to induce a temperature dependence of the spin-orbit coupling. These include the difference in the expansion coefficients between the graphene and the boron nitride substrate or the metal contacts, the electron-phonon interactions, and the presence of a magnetic order at low temperature. Our experimental observation expands knowledge about the nontrivial topological gap in graphene.

Subject headings

NATURVETENSKAP  -- Fysik -- Annan fysik (hsv//swe)
NATURAL SCIENCES  -- Physical Sciences -- Other Physics Topics (hsv//eng)
NATURVETENSKAP  -- Kemi -- Teoretisk kemi (hsv//swe)
NATURAL SCIENCES  -- Chemical Sciences -- Theoretical Chemistry (hsv//eng)
NATURVETENSKAP  -- Fysik -- Den kondenserade materiens fysik (hsv//swe)
NATURAL SCIENCES  -- Physical Sciences -- Condensed Matter Physics (hsv//eng)

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