Spin Stiffness and Domain Walls in Dirac-Electron Mediated Magnets
Sahinur Reja, H. A. Fertig, and L. Brey

TL;DR
This paper explores how Dirac-electron mediated magnetic systems exhibit unique long-range spin stiffness and Coulomb-like interactions among domain walls, driven by topological properties and electron density, especially at the Dirac point.
Contribution
It reveals the emergence of long-range spin stiffness and Coulomb-like domain wall interactions in Dirac-electron systems, highlighting the role of topology and electron density in these phenomena.
Findings
Long-range spin stiffness at Dirac point
Logarithmic interactions among domain walls
Presence of in-gap states stabilizing pseudogap regimes
Abstract
Spin interactions of magnetic impurities mediated by conduction electrons is one of the most interesting and potentially useful routes to ferromagnetism in condensed matter. In recent years such systems have received renewed attention due to the advent of materials in which Dirac electrons are the mediating particles, with prominent examples being graphene and topological insulator surfaces. In this paper, we demonstrate that such systems can host a remarkable variety of behaviors, in many cases controlled only by the density of electrons in the system. Uniquely characteristic of these systems is an emergent long-range form of the spin stiffnes when the Fermi energy resides at a Dirac point, becoming truly long-range as the magnetization density becomes very small. It is demonstrated that this leads to screened Coulomb-like interactions among domain walls, via a subtle mechanism in…
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Taxonomy
TopicsTopological Materials and Phenomena · Quantum and electron transport phenomena · Magnetic properties of thin films
