Magnetization-non-conserving spin-orbit interactions enable quantum fluctuations to stabilize chiral ferromagnetic phases with spontaneous orbital chirality and enhanced thermal Hall effect, contrary to classical predictions of only collinear order.
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Quantum fluctuations generate nonzero scalar spin chirality in collinear or coplanar magnetic orders on a triangular lattice with XXZ and spin-orbit interactions under magnetic field.
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Fluctuation-driven chiral ferromagnetism
Magnetization-non-conserving spin-orbit interactions enable quantum fluctuations to stabilize chiral ferromagnetic phases with spontaneous orbital chirality and enhanced thermal Hall effect, contrary to classical predictions of only collinear order.
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Spin-orbit-induced quantum chiral phases
Quantum fluctuations generate nonzero scalar spin chirality in collinear or coplanar magnetic orders on a triangular lattice with XXZ and spin-orbit interactions under magnetic field.