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Electronic structure of a layered altermagnetic compound CoNb4Se8
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Recently, there has been a growing interest in altermagnetism, a novel form of magnetism, characterized by unique spin-splitting even in the absence of both net magnetic moments and spin-orbit coupling. Despite numerous theoretical predictions, experimental evidence of such spin-splitting in real materials remains limited. In this study, we use angle-resolved photoemission spectroscopy (ARPES) combined with density functional theory (DFT) calculations to investigate the electronic band structure of the altermagnet candidate CoNb4Se8. This material features an ordered sublattice of intercalated Co atoms within NbSe2 layers. Magnetization and electrical resistivity measurements reveal the onset of antiferromagnetism below 168 K. Temperature dependent ARPES data, supported by DFT calculations, uncover spin split bands along the MGM high-symmetry direction. The observation of spin splitting in this high temperature altermagnet opens new avenues for exploring its electronic properties and potential applications in spintronic technologies.
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Cited by 3 Pith papers
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Spin-phonon interaction in a symmetry-enforced spin-polarized state
In the altermagnet CoNb4Se8 and a magnetically disordered Co-deficient analogue, specific phonon modes renormalize anomalously near 175-180 K, indicating lattice coupling to symmetry-governed spin polarization that do...
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Raman spectroscopy of the van der Waals altermagnet Co$_{1/4}$NbSe$_2$
Co1/4NbSe2 Raman modes arise from zone-folded hybridized Nb/Se phonons (Co silent by symmetry), with spin-phonon coupling in A1g modes from Se out-of-plane motion and no discontinuities at TN.
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Effect of applied pressure on the non-relativistic spin-splitting (NRSS) of FeSb2 altermagnet: A first-principles study
DFT calculations predict FeSb2 remains dynamically stable up to 10 GPa, with pressure suppressing its altermagnetic spin splitting and reversing the sign of its anomalous Hall conductivity.
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