Tunable Valley Polarization and Anomalous Hall Effect in Ferrovalley NbX2 and TaX2 (X = S, Se, Te): A First-Principles Study
Samiul Islam, Sharif Mohammad Mominuzzaman, and Ahmed Zubair

TL;DR
This study uses first-principles calculations to explore tunable valley polarization and anomalous Hall effects in ferrovalley NbX2 and TaX2 monolayers, revealing their potential for spintronic applications.
Contribution
It identifies new ferrovalley materials with intrinsic valley polarization and demonstrates tunability via strain and magnetic moment reversal, advancing 2D spintronic material research.
Findings
NbSe2 has a Curie temperature of 176.25 K.
TaTe2 shows a valley splitting of 541 meV.
Strain manipulates bandgap and valley polarization.
Abstract
Two-dimensional transition metal dichalcogenides lack inversion symmetry and have broken time-reversal symmetry due to the honeycomb structure and intrinsic ferromagnetism, which leads to their valley polarization. Here, we explored the electronic and magnetic properties of the novel ferrovalley materials 1H-NbS2, 1H-NbSe2, 1H-NbTe2, 1H-TaS2, 1H-TaSe2, and 1H-TaTe2 using first-principles calculations based on density functional theory. The materials are dynamically stable bipolar magnetic semiconductors. Among the magnetic semiconductors, NbSe2 showed the maximum Curie temperature of 176.25 K. For these materials, the ferromagnetic state was more favorable than the antiferromagnetic state, indicating robust ferrovalley characteristics. These ferrovalley materials showed a giant tunable valley polarization at K and K' points in the Brillouin zone without applying any external factors due…
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