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Free fermions behind the disguise

Quantum Physics 2021-11-09 v2 Statistical Mechanics Strongly Correlated Electrons High Energy Physics - Theory Mathematical Physics math.MP

Abstract

An invaluable method for probing the physics of a quantum many-body spin system is a mapping to noninteracting effective fermions. We find such mappings using only the frustration graph GG of a Hamiltonian HH, i.e., the network of anticommutation relations between the Pauli terms in HH in a given basis. Specifically, when GG is (even-hole, claw)-free, we construct an explicit free-fermion solution for HH using only this structure of GG, even when no Jordan-Wigner transformation exists. The solution method is generic in that it applies for any values of the couplings. This mapping generalizes both the classic Lieb-Schultz-Mattis solution of the XY model and an exact solution of a spin chain recently given by Fendley, dubbed "free fermions in disguise." Like Fendley's original example, the free-fermion operators that solve the model are generally highly nonlinear and nonlocal, but can nonetheless be found explicitly using a transfer operator defined in terms of the independent sets of GG. The associated single-particle energies are calculated using the roots of the independence polynomial of GG, which are guaranteed to be real by a result of Chudnovsky and Seymour. Furthermore, recognizing (even-hole, claw)-free graphs can be done in polynomial time, so recognizing when a spin model is solvable in this way is efficient. We give several example families of solvable models for which no Jordan-Wigner solution exists, and we give a detailed analysis of such a spin chain having 4-body couplings using this method.

Keywords

Cite

@article{arxiv.2012.07857,
  title  = {Free fermions behind the disguise},
  author = {Samuel J. Elman and Adrian Chapman and Steven T. Flammia},
  journal= {arXiv preprint arXiv:2012.07857},
  year   = {2021}
}

Comments

29 pages, 9 figures

R2 v1 2026-06-23T20:58:00.174Z