Skyrmion annihilation in helimagnets and the critical condition of topological phase transitions with a soft mode
Yangfan Hu

TL;DR
This paper investigates the process of skyrmion annihilation in helimagnets, revealing that it begins with a local magnetization reversal at a soft mode point, leading to a critical condition for topological phase transitions involving soft modes.
Contribution
It introduces a general critical condition for topological phase transitions in field solutions with soft modes, based on the loss of positive-definiteness in the emergent stiffness matrix.
Findings
Skyrmion annihilation starts at the center with local magnetization reversal.
A soft mode appears at the critical field, vanishing local magnetization and emergent stiffness.
The critical condition involves the loss of positive-definiteness of the stiffness matrix.
Abstract
Since the 1950s, topological solitons have been used to describe elementary particles[1-3] and particle-like field configurations[4-13] that appear in almost all branches of physics ranging from subatomic to cosmological scales[3,14-16]. In this context, formation and annihilation of particles corresponds to topological phase transitions, whose actual process and mechanism remain elusive. Here, we show that annihilation of an isolated skyrmion in helimagnets as the applied magnetic field increases initiates at its center point by a local magnetization reversal. At the critical field, a soft mode of the spin-wave excitation appears, which vanishes the local magnetization modulus as well as the soft-mode-modulated emergent elastic stiffness[17] at the center, which makes it an emergent magnetic monopole[6]. This softened point vanishes the energy barrier of reversing the local…
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Taxonomy
TopicsQuantum, superfluid, helium dynamics · Geomagnetism and Paleomagnetism Studies · Physics of Superconductivity and Magnetism
