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Fermionic tensor networks for higher-order topological insulators from charge pumping

Author(s): Hackenbroich, Anna; Bernevig, B Andrei; Schuch, Norbert; Regnault, Nicolas

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Abstract: We apply the charge pumping argument to fermionic tensor network representations of d- dimensional topological insulators (TIs) to obtain tensor network states (TNSs) for (d + 1)- dimensional TIs. We exemplify the method by constructing a two-dimensional projected entangled pair state (PEPS) for a Chern insulator starting from a matrix product state (MPS) in d = 1 describing pumping in the Su-Schrieffer-Heeger (SSH) model. In extending the argument to second- order TIs, we build a three-dimensional TNS for a chiral hinge TI from a PEPS in d = 2 for the obstructed atomic insulator (OAI) of the quadrupole model. The (d + 1)-dimensional TNSs ob- tained in this way have a constant bond dimension inherited from the d-dimensional TNSs in all but one spatial direction, making them candidates for numerical applications. From the d-dimensional models, we identify gapped next-nearest neighbour Hamiltonians interpolating between the trivial and OAI phases of the fully dimerized SSH and quadrupole models, whose ground states are given by an MPS and a PEPS with a constant bond dimension equal to 2, respectively.
Publication Date: 19-Mar-2020
Electronic Publication Date: 19-Mar-2020
Citation: Hackenbroich, Anna, Bernevig, B Andrei, Schuch, Norbert, Regnault, Nicolas. (Fermionic tensor networks for higher-order topological insulators from charge pumping. Physical Review B, 101 (11), 10.1103/physrevb.101.115134
DOI: doi:10.1103/physrevb.101.115134
ISSN: 2469-9950
EISSN: 2469-9969
Language: en
Type of Material: Journal Article
Journal/Proceeding Title: Physical Review B
Version: Author's manuscript



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