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Role of Fe intercalation on transition-metal dichalcogenide Fe<sub>1/3+δ</sub>NbS<sub>2</sub>

ORAL

Abstract

Among 3d transition metal intercalated transition-metal dichalcogenides (TMDCs), Fe1/3+δNbS2 has been found to possess two competing and highly tunable long-range ordered magnetic ground states -- antiferromagnetic stripe and zigzag orders, which can lead to intriguing resistance switching and magnetic memory effects. However, how the intercalated Fe atoms interact with the van der Waals bonded host material electronically remains unclear. Here, combining angle-resolved photoemission spectroscopy (ARPES) with DFT calculations, we systematically study the electronic structure of Fe1/3+δNbS2. The electronic bands are significantly adjusted to the superlattice. We discuss the orbital selective charge transfer scenarios between the intercalated Fe and the NbS2 layers. We also discuss the evolution of the electronic structure associated with the antiferromagnetic phase transition.Finally, we will discuss the effect of electronic correlation in the 3d transition metal intercalated TMDCs, especially in comparison to the weak coupling theories used to describe this material family.

Presenters

  • Wenxin Li

    Yale University

Authors

  • Wenxin Li

    Yale University

  • Shan Wu

    Lawrence Berkeley National Laboratory

  • Shannon C Haley

    University of California, Berkeley

  • Sophie F Weber

    University of California, Berkeley

  • Jeffrey B Neaton

    Lawrence Berkeley National Laboratory, University of California, Berkeley, Department of Physics, University of California, Berkeley; Materials Sciences Division, Lawrence Berkeley National Laboratory; Kavli Energy NanoScience Institute at Berkeley

  • James G Analytis

    University of California, Berkeley

  • Robert J Birgeneau

    University of California, Berkeley

  • Yu He

    Yale University