Directly probing g-wave altermagnetism below and above the Fermi level
ORAL
Abstract
Altermagnetism is the first phase of matter which can be uniquely classified by a spin group. Due to the additional degree of freedom enabled by the orthogonal operations of crystal and spin rotation required to map the unit cell, the altermagnet manifests a spin-split electronic structure which has very appealing spintronic and neuromorphic applications. While initial probes and realizations of altermagnetic materials have been riddled with disorder, here we combine a pair of direct probes of spin polarized electronic structure to characterize a $g$-wave altermagnetic phase within an intercalated transition metal dichalcogenide $\mathrm{CoNb_4Se_8}$. Using spin-resolved photoemission spectroscopy, we uncover a pair of spin split constant energy surfaces in the occupied electronic structure which are mapped to one another through $C_6$ rotation. Importantly, by implementing a newly-developed technique dubbed spin-and angle- resolved electron reflection spectroscopy (sp-ARRES) [1], we unprecedentedly reveal that spin-split constant energy surfaces persist up to 11 eV above $E_\mathrm{F}$, far into the unoccupied regions of the band structure. We explain our results with \textit{ab-initio} calculations and tight-binding models that elucidate the role of symmetry and the crystal field in the spin splitting. As the material crosses its Néel temperature, the spectral weight of half of the spin split bands in the Fermi surface drops precipitously, confirming the observation of an altermagnetic phase transition.
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Publication: arXiV: 2410:XXXXX
Presenters
Nicholas G Dale
University of California, Berkeley, Lawrence Berkeley National Laboratory
Authors
Nicholas G Dale
University of California, Berkeley, Lawrence Berkeley National Laboratory
Omar A Ashour
University of California, Berkeley
Marc Vila
Lawrence Berkeley National Lab
Justin Fox
Lawrence Berkeley National Lab
Resham B Regmi
University of Notre Dame, Stavropoulos Center for Complex Quantum Matter, University of Notre Dame, Department of Physics and Astronomy, University of Notre Dame; Stavropoulos Centre for Complex Quantum Matter, University of Notre Dame
Alexei V Fedorov
Lawrence Berkeley National Laboratory
Alexander Stibor
Lawrence Berkeley National Laboratory
Nirmal J Ghimire
University of Notre Dame, Stavropoulos Center for Complex Quantum Matter, Department of Physics and Astronomy, Stavropoulos Center for Complex Quantum Matter, University of Notre Dame, University of Notre Dame, Department of Physics and Astronomy, University of Notre Dame; Stavropoulos Centre for Complex Quantum Matter, University of Notre Dame
Sinead M Griffin
Lawrence Berkeley National Laboratory, Materials Sciences Division and Molecular Foundry, LBNL, Materials Sciences Division and Molecular Foundry, Berkeley Lab, Lawrence Berkeley National Lab