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Spin-valley locking in the normal state of a transition-metal dichalocogenide superconductor

Authors :
Bawden, L.
Cooil, S. P.
Mazzola, F.
Riley, J. M.
Collins-McIntyre, L. J.
Sunko, V.
Hunvik, K.
Leandersson, M.
Polley, C. M.
Balasubramanian, T.
Kim, T. K.
Hoesch, M.
Wells, J. W.
Balakrishnan, G.
Bahramy, M. S.
King, P. D. C.
Source :
Nature Communications 7, 11711 (2016)
Publication Year :
2016

Abstract

The metallic transition-metal dichalcogenides (TMDCs) are benchmark systems for studying and controlling intertwined electronic orders in solids, with superconductivity developing upon cooling from a charge density wave state. The interplay between such phases is thought to play a critical role in the unconventional superconductivity of cuprates, Fe-based, and heavy-fermion systems, yet even for the more moderately-correlated TMDCs, their nature and origins have proved highly controversial. Here, we study a prototypical example, $2H$-NbSe$_2$, by spin- and angle-resolved photoemission and first-principles theory. We find that the normal state, from which its hallmark collective phases emerge, is characterised by quasiparticles whose spin is locked to their valley pseudospin. This results from a combination of strong spin-orbit interactions and local inversion symmetry breaking. Non-negligible interlayer coupling further drives a rich three-dimensional momentum-dependence of the underlying Fermi surface spin texture. Together, these findings necessitate a fundamental re-investigation of the nature of charge order and superconducting pairing in NbSe$_2$ and related TMDCs.<br />Comment: 7 pages, 4 figures

Details

Database :
arXiv
Journal :
Nature Communications 7, 11711 (2016)
Publication Type :
Report
Accession number :
edsarx.1603.05207
Document Type :
Working Paper
Full Text :
https://doi.org/10.1038/ncomms11711