Searching for activated transitions in complex magnetic systems
arXiv:2311.10584 · doi:10.1103/PhysRevB.108.174419
Abstract
The process of finding activated transitions in localized spin systems with continuous degrees of freedom is developed based on a magnetic variant of the Activation-Relaxation Technique (mART). In addition to the description of the method and the relevant local properties of the magnetic energy landscape, a criterion to efficiently recognize failed attempts and an expression for the step magnitude to control the convergence are proposed irrespective of the physical system under study. The present implementation is validated on two translational symmetric systems with isotropic exchange interactions. Then, in one example, diffusion processes of a skyrmion vacancy and a skyrmion interstitial are revealed for a skyrmion system on a square spin lattice. In another example, the set of activation events about a metastable state of a 2D dipolar spin glass is investigated and the corresponding energy barrier distribution is found. Detailed inspection of the transition states reveals the participation of nearest neighbour pairs affording a simplified analytical understanding.
References in corpus (6)
- Structural and dielectric properties of amorphous ZrO2 and HfO2
- The Kinetic Activation-Relaxation Technique: A Powerful Off-lattice On-the-fly Kinetic Monte Carlo Algorithm
- Point Defect Dynamics in Two-Dimensional Colloidal Crystals
- Theory of magnetic skyrmion glass
- Elementary transitions and magnetic correlations in two-dimensional disordered nanoparticle ensembles
- A graph theoretical analysis of the energy landscape of model polymers