Anisotropic exchange interaction induced by a single photon in semiconductor microcavities

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Abstract

We investigate coupling of localized spins in a semiconductor quantum dot embedded in a microcavity. The lowest cavity mode and the quantum dot exciton are coupled and close in energy, forming a polariton. The fermions forming the exciton interact with localized spins via exchange. Exact diagonalization of a Hamiltonian in which photons, spins, and excitons are treated quantum mechanically shows that a single polariton induces a sizable indirect anisotropic exchange interaction between spins. At sufficiently low temperatures strong ferromagnetic correlations show up without an appreciable increase in exciton population. In the case of a (Cd,Mn)Te quantum dot, Mn-Mn ferromagnetic coupling is still significant at 1K: spin-spin correlation around 3 for exciton occupation smaller than 0.3. We find that the interaction mediated by photon-polaritons is 10 times stronger than the one induced by a classical field for equal Rabi splitting. © 2005 The American Physical Society.

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Chiappe, G., Fernández-Rossier, J., Louis, E., & Anda, E. V. (2005). Anisotropic exchange interaction induced by a single photon in semiconductor microcavities. Physical Review B - Condensed Matter and Materials Physics, 72(24). https://doi.org/10.1103/PhysRevB.72.245311

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