Symmetry Breaking in Occupation Number Based Slave-Particle Methods
arXiv:1702.03381 · doi:10.1103/PhysRevB.96.165135
Abstract
We describe a theoretical approach for finding spontaneously symmetry-broken electronic phases due to strong electronic interactions when using recently developed slave-particle (slave-boson) approaches based on occupation numbers. We describe why, to date, spontaneous symmetry breaking has proven difficult to achieve in such approaches. We then provide a total-energy based approach for introducing auxiliary symmetry breaking fields into the solution of the slave-particle problem that leads to lowered total energies for symmetry broken phases. We point out that not all slave-particle approaches yield to energy lowering: the slave-particle model being used must explicitly describe the degrees of freedom that break symmetry. Finally, our total energy approach permits us to greatly simplify the formalism used to achieve a self-consistent solution between spinon and slave modes while increasing numerical stability and greatly speeding up the calculations.
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Cited by in corpus (7)
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- First principle prediction of structural distortions in the cuprates and their impact on the electronic structure
- Energy Landscape analysis of metal-insulator transitions: theory and application to CaRuO, NiO and their heterostructures
- Mott transition, magnetic and orbital orders in the ground state of the two-band Hubbard model using variational slave-spin mean field formalism
- Bond-dependent slave-particle cluster theory based on density matrix expansion