Symmetry classification framework for unconventional magnetism identifies hybrid-parity and unconstrained-parity classes beyond altermagnets and odd-parity magnets, with computational example of combined spintronic effects.
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3 Pith papers cite this work. Polarity classification is still indexing.
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Generalized Bloch theorem enables primitive-cell modeling of helimagnetic order with odd-parity magnetism, where spin splitting is largest for p-orbital states.
Supercurrents in superconductor/altermagnet hybrids generate a tunable Néel torque that can propel domain walls and reverse Néel vector orientation.
citing papers explorer
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Unconventional Magnetism: Symmetry Classification, Hybrid-parity and Unconstrained-parity Classes
Symmetry classification framework for unconventional magnetism identifies hybrid-parity and unconstrained-parity classes beyond altermagnets and odd-parity magnets, with computational example of combined spintronic effects.
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Odd-parity Magnetism from the Generalized Bloch Theorem
Generalized Bloch theorem enables primitive-cell modeling of helimagnetic order with odd-parity magnetism, where spin splitting is largest for p-orbital states.
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Supercurrent-Driven N\'eel Torque in Superconductor/Altermagnet Hybrids
Supercurrents in superconductor/altermagnet hybrids generate a tunable Néel torque that can propel domain walls and reverse Néel vector orientation.