Characterization of quantum spin liquids and their spinon band structures via functional renormalization
ORAL
Abstract
We combine the pseudofermion functional renormalization group (PFFRG) method with a self-consistent Fock-like mean-field scheme to calculate low-energy effective theories for emergent spinon excitations in spin-1/2 quantum spin liquids. Using effective spin interactions from PFFRG as an input for the Fock equation and allowing for the most general types of free spinon ansatze as classified by the projective symmetry group (PSG) method, we are able to systematically determine spinon band structures for spin-liquid candidate systems beyond mean-field theory. We apply this approach to the antiferromagnetic J1-J2 Heisenberg model on the square lattice and to the antiferromagnetic nearest-neighbor Heisenberg model on the kagome lattice. For the J1-J2 model, we find that in the regime of maximal frustration a SU(2) pi-flux state with Dirac spinons yields the largest mean-field amplitudes. For the kagome model, we identify a gapless Z2 spin liquid with a small circular spinon Fermi surface and approximate Dirac-cones at low but finite energies.
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Presenters
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Johannes Reuther
Dahlem Center for Complex Quantum Systems, Freie Universitat Berlin, Physics Department, Freie Universitaet Berlin, Physics, Freie Universität Berlin
Authors
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Johannes Reuther
Dahlem Center for Complex Quantum Systems, Freie Universitat Berlin, Physics Department, Freie Universitaet Berlin, Physics, Freie Universität Berlin
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Max Hering
Physics Department, Freie Universitaet Berlin
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Jonas Sonnenschein
Physics Department, Freie Universitaet Berlin
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Yasir Iqbal
Indian Institute of Technology Madras, Department of Physics, Indian Institute of Technology Madras