A strain-dependent spin model built from DFT exchange interactions predicts that CrPS4 monolayers have strong anisotropic magnetoelastic coupling with strain-driven spiral-to-ferromagnetic transitions, while NiPS3 monolayers couple weakly to strain.
Magnetic ground states of CrPS$_4$ and NiPS$_3$ monolayers from long-range exchange interactions
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abstract
We investigate the magnetic properties of monolayer CrPS$_4$ and NiPS$_3$ by combining first-principles calculations, second-principles spin models, and Monte Carlo simulations. Unlike conventional approaches that truncate exchange interactions after only a few shells and determine them by fitting total energies, we extract the magnetic exchange tensors directly from density functional theory using the LKAG formalism and include interactions until numerical convergence is achieved. We show that long-range exchange interactions qualitatively modify the magnetic behavior of both materials. In CrPS$_4$, they destabilize the previously predicted ferromagnetic ground state and stabilize a spin-spiral phase, reducing the critical temperature to about 21\,K, in agreement with available experiments. The resulting magnetic phase diagram contains multiple collinear and non-collinear phases that can be tuned by temperature and external magnetic fields. In NiPS$_3$, the experimentally observed zigzag antiferromagnetic order only emerges when exchange interactions up to the fifth shell are included. These results demonstrate that quantitatively predictive spin models for thiophosphate monolayers require long-range exchange interactions and provide a predictive framework for accurately describing two-dimensional van der Waals magnets.
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Strain-controlled magnetism and magnetoelasticity in monolayer NiPS$_3$ and CrPS$_4$
A strain-dependent spin model built from DFT exchange interactions predicts that CrPS4 monolayers have strong anisotropic magnetoelastic coupling with strain-driven spiral-to-ferromagnetic transitions, while NiPS3 monolayers couple weakly to strain.