Quantum Thermal Hall effect of chiral spinons on a Kagome strip
arXiv:1903.00246 · doi:10.1103/PhysRevB.99.174429
Abstract
We develop a theory for the thermal Hall coefficient in a spin- system on a strip of Kagome lattice, where a chiral spin-interaction term is present. To this end, we model the Kagome strip as a three-leg spin-ladder, and use Bosonization to derive a low-energy theory for the spinons in this system. Introducing further a Dzyaloshinskii-Moriya interaction () and a tunable magnetic field (), we identify three distinct -dependent quantum phases: a valence-bond crystal (VBC), a "metallic" spin liquid (MSL) and a chiral spin liquid (CSL). In the presence of a temperature difference between the top and the bottom edges of the strip, we evaluate the net heat current along the strip, and consequently the thermal Hall conductivity . We find that the VBC-MSL-CSL transitions are accompanied by a pronounced qualitative change in the behavior of as a function of . In particular, analogously to the quantum Hall effect, in the CSL phase exhibits a quantized plateau centered around a commensurate value of the spinon filling factor .
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