First-Principles Spin-Lattice Coupling from Downfolded Electron-Phonon Interaction
Xu He, Álvaro Adrián Carrasco Álvarez, Gian-Marco Rignanese, Eric Bousquet, Samuel Poncé, Matthieu J. Verstraete
Abstract
We present a method to calculate spin-phonon coupling parameters from first-principles perturbation theory by downfolding the electron-phonon coupling (EPC). We exploit the localized nature of magnetic moments and atomic displacements by working in the Wannier representation of the electronic Hamiltonian and the EPC matrix. The spin system is mapped to a classical Heisenberg Hamiltonian, whose parameters are obtained by treating local spin rotations as a perturbation within a Green's-function formalism. The spin and phonon perturbations are connected through the EPC parameters, which enter as lattice-induced perturbations to the tight-binding Hamiltonian. By combining these lattice perturbations with local spin rotations, we obtain real-space derivatives of magnetic exchange parameters without performing displaced magnetic supercell calculations. We illustrate the method on SrMnO3 and show that it can be integrated directly into standard workflows.
Create a lesson
Related papers
Divergence between long- and short-wavelength magnon damping in spinel ferrites
Christopher T. Parzyck, Octave Duros, Hari Paudyal et al.
An Atlas and Design Rules for Single- and Dual-Atom Alloys
Fabian Berger, Yicheng Wang, E. Charles H. Sykes et al.
Epitaxial inversion of spontaneous polarization in ε-Ga2O3
Yan Wang, Zhigao Xie, Weihua Tang et al.
Gauge-including neural-network quantum Monte Carlo for molecules in magnetic fields
Chengye Lü, Weizhong Fu, Xin-gao Gong et al.
Photoresponse properties of single-crystalline thick film based on high-entropy topological insulator (Bi3/4Sb1/4)2(Te2/5Se2/5S1/5)3
Alexei Vasilev, Marina Zhezhu, Oleg Ivanov
Adaptive Substrate Support Based on Thin-Film Piezoelectric Actuators
Ertuğ Şimşek, Bas Jansen, Marcelo Ackermann et al.