A Spin-Lattice Dynamics Model with Improved Energy and Angular Momentum Conservation

dc.contributor.advisorLukes, Jennifer, R
dc.contributor.advisorCastañeda, Pedro, P
dc.contributor.authorCooke, Joseph, Ralph
dc.date.accessioned2024-03-19T18:57:09Z
dc.date.available2024-03-19T18:57:09Z
dc.date.copyright2022
dc.date.issued2022
dc.date.updated2024-03-19T18:57:09Z
dc.description2022
dc.description.abstractMagnetic materials are critically important in a wide range of application areas including data storage, medicine, energy harvesting, and refrigeration. Atomistic numerical simulations of magnetic materials can provide important insight in these applications because they offer the ability to track phenomena such as magnon-phonon interactions, ultrafast demagnetization processes, and magnetization and energy at time and length scales that can be difficult to observe experimentally. Spin-lattice dynamics, a classical atomistic simulation method that models atomic magnetic moments and atomic displacements simultaneously, is able to capture these phenomena. Unfortunately, energy stability can be a challenge in spin-lattice dynamics simulations and angular momentum artifacts are a known issue in atomistic models of periodic systems. Both of these problems can cause errors in the evolution of spin orientations and atomic positions, leading to unphysical predictions of temperature, magnetization, and thermal-magnetic coupling in magnetic materials. This dissertation presents an improved computational model for spin-lattice dynamics simulations developed to address the above challenges. The model offers superior energy and magnetization conservation and the ability to quantify lattice angular momentum changes generated by spin relaxation processes in bulk materials. The improvements made in this work advance spin-lattice dynamics as a computational tool for the design and analysis of magnetic materials.
dc.description.degreeDoctor of Philosophy (PhD)
dc.extent93
dc.identifier.urihttps://repository.upenn.edu/handle/20.500.14332/59636
dc.language.isoen
dc.subjectMechanical Engineering
dc.subject.otherAngular Momentum
dc.subject.otherComputer Simulations
dc.subject.otherImplicit Integrator
dc.subject.otherLAMMPS
dc.subject.otherSpin-Lattice Dynamics
dc.titleA Spin-Lattice Dynamics Model with Improved Energy and Angular Momentum Conservation
dc.typeDissertation/Thesis
dspace.date.proquestEmbargo
dspace.entity.typePublication
upenn.graduate.groupMechanical Engineering and Applied Mechanics
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