Topological correlated electronic states and magnetic domains in a van der Waals ferromagnet Ni1/4TaSe2
ORAL
Abstract
Layered ferromagnets with strongly correlated electrons offer a rich platform for exploring emergent phenomena such as itinerant magnetism, unconventional superconductivity, and many-body states. Ni1/4TaSe2 is one such system that undergoes a ferromagnetic transition below 58 K and exhibits superconductivity upon depletion of Ni ions. Using spin- and angle-resolved photoemission spectroscopy (SARPES), we confirmed the spin polarization of electronic states at the Fermi level and observed the breaking of time-reversal symmetry at both the Γ and M points. Circular dichroic SARPES measurements enabled us to isolate the Berry curvature, revealing the material's non-trivial topological properties. Polarization-dependent x-ray absorption spectroscopy (XAS) and photoemission electron microscopy (PEEM) mapping of magnetic domains provided direct evidence of ferromagnetism. Together, these results experimentally validate theoretical predictions of spin-polarized states and non-trivial topology in Ni1/4TaSe2, offering new insights into the interplay between topology, ferromagnetism, and superconductivity.
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Publication:F. Mazzola et al., Topological correlated electronic states in a van der Waals ferromagnet, in preparation (2024).
Presenters
Lidia A Lapinski
Temple University
Authors
Lidia A Lapinski
Temple University
Federico Mazzola
CNR-IOM
Jay R Paudel
Temple University
Valeria R Rocha
UC Berkeley
Barun Ghosh
Northeastern University
Abigail M Derrico
Temple University
Nikola Maksimovic
UC Berkeley
Iulia Cojocariu
Forschungszentrum Julich GmbH
Daniel Baranowski
Forschungszentrum Julich GmbH
Christoph Klewe
Lawrence Berkeley National Laboratory
Padraic Shafer
Lawrence Berkeley National Laboratory
Vitaliy Feyer
Forschungszentrum Julich GmbH
Ivana Vobornik
CNR-IOM
Claus M Schneider
Forschungszentrum Julich GmbH
Giancarlo Panaccione
CNR-IOM
Florian Kronast
Helmholtz-Zentrum Berlin für Materialien und Energie