Optimizing Density Functional Theory for Strain-Dependent Magnetic Properties of Monolayer MnBiTe with Diffusion Monte Carlo
arXiv:2603.16162
Abstract
Monolayer MnBiTe (MBT) is an intrinsically magnetic topological insulator whose magnetic response is strongly affected by strain and electron correlation. In density functional theory with an on-site Hubbard correction (DFT+), however, predictions vary substantially with the choice of Hubbard , making it difficult to establish a reliable strain-dependent picture of magnetism in this system. Here we use diffusion Monte Carlo (DMC) to benchmark DFT+ for monolayer MBT and to determine an effective as a function of strain. We find that the predicted magnetic phase diagram depends strongly on , indicating that a single fixed value is not sufficient across the strain range considered. DMC nodal optimization further shows that the optimal increases with strain magnitude and is well captured by a simple quadratic form. When this DMC-informed strain-dependent is used in PBE+, the calculated Mn local moments are brought into close agreement with DMC and are improved relative to commonly used fixed- choices. These results show that, for monolayer MBT, correlation strength itself should be treated as strain dependent, and they provide a practical many-body-guided strategy for improving strain-dependent DFT+ descriptions of magnetic van der Waals materials.
An updated version of arXiv:2408.03248