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Critical Theory of Two-Dimensional Mott Transition: Integrability and Hilbert Space Mapping
Facultad de Ingeniería, Pontificia Universidad Católica Argentina, Buenos Aires, Argentina
Physics Department, Comisión Nacional de Energía Atómica, Buenos Aires, Argentina
- 1 Facultad de Ingeniería, Pontificia Universidad Católica Argentina, Buenos Aires, Argentina
- 2 Physics Department, Comisión Nacional de Energía Atómica, Buenos Aires, Argentina
Journal of Modern Physics·Volume 06 (2015)·Pages 634–639·Published 31 March 2015·DOI10.4236/jmp.2015.65069
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Abstract
We reconsider the Mott transition in the context of a two-dimensional fermion model with density-density coupling. We exhibit a Hilbert space mapping between the original model and the Double Lattice Chern-Simons theory at the critical point by use of the representation theory of the q -oscillator and Weyl algebras. The transition is further characterized by the ground state modification. The explicit mapping provides a new tool to further probe and test the detailed physical properties of the fermionic lattice model considered here and to enhance our understanding of the Mott transition(s).
KeywordsMott TransitionConformal Field TheoryChern-Simons TheoryEffective Field TheoryQuantum GroupsIntegrable ModelsStrongly Correlated Electrons
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