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Towards a Topological Quantum Chemistry description of correlated systems: the case of the Hubbard diamond chain

Authors :
Iraola, Mikel
Heinsdorf, Niclas
Tiwari, Apoorv
Lessnich, Dominik
Mertz, Thomas
Ferrari, Francesco
Fischer, Mark H.
Winter, Stephen M.
Pollmann, Frank
Neupert, Titus
Valentí, Roser
Vergniory, Maia G.
Publication Year :
2021

Abstract

The recently introduced topological quantum chemistry (TQC) framework has provided a description of universal topological properties of all possible band insulators in all space groups based on crystalline unitary symmetries and time reversal. While this formalism filled the gap between the mathematical classification and the practical diagnosis of topological materials, an obvious limitation is that it only applies to weakly interacting systems-which can be described within band theory. It is an open question to which extent this formalism can be generalized to correlated systems that can exhibit symmetry protected topological phases which are not adiabatically connected to any band insulator. In this work we address the many facettes of this question by considering the specific example of a Hubbard diamond chain. This model features a Mott insulator, a trivial insulating phase and an obstructed atomic limit phase. Here we discuss the nature of the Mott insulator and determine the phase diagram and topology of the interacting model with infinite density matrix renormalization group calculations, variational Monte Carlo simulations and with many-body topological invariants. We then proceed by considering a generalization of the TQC formalism to Green's functions combined with the concept of topological Hamiltonian to identify the topological nature of the phases, using cluster perturbation theory to calculate the Green's functions. The results are benchmarked with the above determined phase diagram and we discuss the applicability and limitations of the approach and its possible extensions.<br />Comment: 16 pages, 13 figures

Details

Database :
arXiv
Publication Type :
Report
Accession number :
edsarx.2101.04135
Document Type :
Working Paper
Full Text :
https://doi.org/10.1103/PhysRevB.104.195125