Monte Carlo simulations show dipole-dipole interactions stabilize Bloch skyrmions at zero magnetic field while electric fields continuously tune helicity toward Néel type in centrosymmetric triangular magnets.
Title resolution pending
3 Pith papers cite this work. Polarity classification is still indexing.
years
2026 3representative citing papers
Skyrmions in ferrimagnets gain massive dynamics from multi-sublattice deformations, enabling detectable gyroscopic cyclotron resonance near compensation points.
Magnetic domain walls are positioned as a platform for scalable quantum computation architectures leveraging their quantum effects and mobility.
citing papers explorer
-
Skyrmion Phase Control by Magnetic Dipole-Dipole Interaction and Electric Field in Centrosymmetric Materials
Monte Carlo simulations show dipole-dipole interactions stabilize Bloch skyrmions at zero magnetic field while electric fields continuously tune helicity toward Néel type in centrosymmetric triangular magnets.
-
Massive dynamics of skyrmions in ferrimagnetic films
Skyrmions in ferrimagnets gain massive dynamics from multi-sublattice deformations, enabling detectable gyroscopic cyclotron resonance near compensation points.
-
Perspective: Quantum Computing on Magnetic Racetrack
Magnetic domain walls are positioned as a platform for scalable quantum computation architectures leveraging their quantum effects and mobility.