The magneto-optical Faraday effect in spin liquid candidates
arXiv:1407.6346 · doi:10.1103/PhysRevB.90.121105
Abstract
We propose an experiment to use the magneto-optical Faraday effect to probe the dynamic Hall conductivity of spin liquid candidates. Theory predicts that an external magnetic field will generate an internal gauge field. If the source of conductivity is in spinons with a Fermi surface, a finite Faraday rotation angle is expected. We predict the angle to scale as the square of the frequency rather than display the standard cyclotron resonance pattern. Furthermore, the Faraday effect should be able to distinguish the ground state of the spin liquid, as we predict no rotation for massless Dirac spinons. We give a semiquantitative estimate for the magnitude of the effect and find that it should be experimentally feasible to detect in both -(ET)Cu(CN) and, if the spinons form a Fermi surface, Herbertsmithite. We also comment on the magneto-optical Kerr effect and show that the imaginary part of the Kerr angle may be measurable.
5 pages, 1 figure
References in corpus (6)
- Projected wavefunction study of Spin-1/2 Heisenberg model on the Kagome lattice
- Electronic Orbital Currents and Polarization in Mott Insulators
- Power-law Conductivity inside the Mott gap: application to
- Power-law dependence of the optical conductivity observed in the quantum spin-liquid compound κ-(BEDT-TTF)2Cu2(CN)3
- Emergent U(1) gauge theory with fractionalized boson/fermion from the bose condensation of exciton in multi-band insulator
- Giant plateau in the THz Faraday angle in gated Bi2Se3