English

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

Superconductivity 2016-05-26 v1 Mesoscale and Nanoscale Physics Materials Science Strongly Correlated Electrons

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, 2H2H-NbSe2_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 NbSe2_2 and related TMDCs.

Keywords

Cite

@article{arxiv.1603.05207,
  title  = {Spin-valley locking in the normal state of a transition-metal dichalocogenide superconductor},
  author = {L. Bawden and S. P. Cooil and F. Mazzola and J. M. Riley and L. J. Collins-McIntyre and V. Sunko and K. Hunvik and M. Leandersson and C. M. Polley and T. Balasubramanian and T. K. Kim and M. Hoesch and J. W. Wells and G. Balakrishnan and M. S. Bahramy and P. D. C. King},
  journal= {arXiv preprint arXiv:1603.05207},
  year   = {2016}
}

Comments

7 pages, 4 figures