Pressure increases the collinear AFM Neel temperature in NiBr2 to 100 K at 3 GPa while suppressing helimagnetic order above 0.8 GPa, with ab initio calculations attributing this to the second-nearest interlayer exchange j2'.
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InSiTe3 shows a self-organized phonon frequency comb near an isolated Einstein mode at ~500 cm^{-1} with pronounced anharmonicity and anomalous temperature dependence near 200 K.
DFT plus Monte Carlo simulations predict itinerant ferromagnetism with Tc exceeding 160 K in p-doped MoS2 monolayers at 9% V concentration.
Spin-dependent tunneling competes with intervalley scattering to set photoluminescence polarization dynamics in TMD/magnetic vdW heterostructures, enabling sign switching under circular excitation.
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Opposite pressure effects on magnetic phase transitions in NiBr2
Pressure increases the collinear AFM Neel temperature in NiBr2 to 100 K at 3 GPa while suppressing helimagnetic order above 0.8 GPa, with ab initio calculations attributing this to the second-nearest interlayer exchange j2'.
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Phonon frequency comb close to an isolated Einstein mode in InSiTe3
InSiTe3 shows a self-organized phonon frequency comb near an isolated Einstein mode at ~500 cm^{-1} with pronounced anharmonicity and anomalous temperature dependence near 200 K.
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Itinerant Ferromagnetism in p-doped Monolayers of MoS2
DFT plus Monte Carlo simulations predict itinerant ferromagnetism with Tc exceeding 160 K in p-doped MoS2 monolayers at 9% V concentration.
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Effect of spin-dependent tunneling and intervalley scattering in magnetic-semiconductor van der Waals heterostructures on exciton and trion polarization
Spin-dependent tunneling competes with intervalley scattering to set photoluminescence polarization dynamics in TMD/magnetic vdW heterostructures, enabling sign switching under circular excitation.