Electronic Band Structure Changes across the Antiferromagnetic Phase Transition of Exfoliated MnPS 3 Flakes Probed by μ-ARPES.
Jeff StrasdasBenjamin PestkaMiłosz RybakAdam K BudniakNiklas LeuthHoney BobanVitaliy FeyerIulia CojocariuDaniel BaranowskiJosé AvilaPavel DudinAaron BostwickChristopher JozwiakEli RotenbergCarmine AutieriYaron AmouyalLukasz PlucinskiEfrat LifshitzMagdalena BirowskaMarkus MorgensternPublished in: Nano letters (2023)
Exfoliated magnetic 2D materials enable versatile tuning of magnetization, e.g., by gating or providing proximity-induced exchange interaction. However, their electronic band structure after exfoliation has not been probed, presumably due to their photochemical sensitivity. Here, we provide micrometer-scale angle-resolved photoelectron spectroscopy of the exfoliated intralayer antiferromagnet MnPS 3 above and below the Néel temperature down to one monolayer. Favorable comparison with density functional theory calculations enables identifying the orbital character of the observed bands. Consistently, we find pronounced changes across the Néel temperature for bands consisting of Mn 3d and 3p levels of adjacent S atoms. The deduced orbital mixture indicates that the superexchange is relevant for the magnetic interaction. There are only minor changes between monolayer and thicker films, demonstrating the predominant 2D character of MnPS 3 . The novel access is transferable to other MPX 3 materials (M: transition metal, P: phosphorus, X: chalcogenide), providing several antiferromagnetic arrangements.
Keyphrases
- density functional theory
- transition metal
- molecular dynamics
- molecular dynamics simulations
- molecularly imprinted
- high resolution
- room temperature
- high glucose
- diabetic rats
- oxidative stress
- risk assessment
- solid state
- endothelial cells
- sewage sludge
- mass spectrometry
- heavy metals
- clinical evaluation
- simultaneous determination