Uniaxial strain transforms 2D altermagnets into fully compensated ferrimagnets with reversible full spin polarization via induced sublattice inequivalence.
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5 Pith papers cite this work. Polarity classification is still indexing.
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UNVERDICTED 5representative citing papers
Coulomb interactions drive altermagnetism in the Kagome Hubbard model at Dirac filling, producing an insulating state with split magnons detectable by inelastic neutron scattering.
Extended s-wave altermagnets are introduced as fully gapped spin-compensated states with isotropic spin splitting arising from valley-exchange symmetries, shown via effective two-valley and microscopic models with guiding principles for identification.
Triplet superconductors exhibit non-relativistic momentum-dependent spin splitting from the pairing order parameter, enabling an Edelstein effect and electric-field-driven spin pumping without relativistic spin-orbit coupling.
ESR reveals flipping g-anisotropy, linewidth broadening, and susceptibility kink indicating two distinct BETS chains and possible altermagnetic order in κ-(BETS)₂Mn[N(CN)₂]₃.
citing papers explorer
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Reversible fully spin polarization in strain-engineered two-dimensional fully compensated magnets
Uniaxial strain transforms 2D altermagnets into fully compensated ferrimagnets with reversible full spin polarization via induced sublattice inequivalence.
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Altermagnetism in an interacting model of Kagome materials
Coulomb interactions drive altermagnetism in the Kagome Hubbard model at Dirac filling, producing an insulating state with split magnons detectable by inelastic neutron scattering.
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Extended s-wave altermagnets
Extended s-wave altermagnets are introduced as fully gapped spin-compensated states with isotropic spin splitting arising from valley-exchange symmetries, shown via effective two-valley and microscopic models with guiding principles for identification.
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Non-Relativistic Spin-Orbit Interaction in Triplet Superconductors: Edelstein Effect and Spin Pumping by Electric Fields
Triplet superconductors exhibit non-relativistic momentum-dependent spin splitting from the pairing order parameter, enabling an Edelstein effect and electric-field-driven spin pumping without relativistic spin-orbit coupling.
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ESR Investigations of the Magnetic Anisotropy in $\kappa$-(BETS)$_2$Mn[N(CN)$_{2}$]$_3$
ESR reveals flipping g-anisotropy, linewidth broadening, and susceptibility kink indicating two distinct BETS chains and possible altermagnetic order in κ-(BETS)₂Mn[N(CN)₂]₃.