We show that a two-body Jastrow wave function is able to capture the ground-state properties of the S=1 Heisenberg chain with nearest-neighbor superexchange J and single-ion anisotropy term D, in both the topological and large-D phases (with D/J≥0). Here, the optimized Jastrow pseudopotential assumes a very simple form in Fourier space, i.e., vq≈1/q2, which is able to give rise to a finite string-order parameter in the topological regime. The results are analyzed by using an exact mapping from the quantum expectation values over the variational state to the classical partition function of the one-dimensional Coulomb gas of particles with charge q=±1. Here, two phases are present at low temperatures: the first one is a diluted gas of dipoles (bound neutral pairs of particles), which are randomly oriented (describing the large-D phase); the other one is a dense liquid of dipoles, which are aligned thanks to the residual dipole-dipole interactions (describing the topological phase, with the finite string order being related to the dipole alignment). Our results provide an insightful interpretation of the ground-state nature of the spin-1 antiferromagnetic Heisenberg model.

Jastrow wave function for the spin-1 Heisenberg chain: The string order revealed by the mapping to the classical Coulomb gas / Piccioni, Davide; Apostoli, Christian; Becca, Federico; Mazzola, Guglielmo; Parola, Alberto; Sorella, Sandro; Santoro, Giuseppe E.. - In: PHYSICAL REVIEW. B. - ISSN 2469-9950. - 108:10(2023), pp. 1-9. [10.1103/physrevb.108.104417]

Jastrow wave function for the spin-1 Heisenberg chain: The string order revealed by the mapping to the classical Coulomb gas

Davide Piccioni
Membro del Collaboration group
;
Federico Becca
Membro del Collaboration group
;
Guglielmo Mazzola
Membro del Collaboration group
;
Alberto Parola
Membro del Collaboration group
;
Sandro Sorella
Membro del Collaboration group
;
Giuseppe E. Santoro
Membro del Collaboration group
2023-01-01

Abstract

We show that a two-body Jastrow wave function is able to capture the ground-state properties of the S=1 Heisenberg chain with nearest-neighbor superexchange J and single-ion anisotropy term D, in both the topological and large-D phases (with D/J≥0). Here, the optimized Jastrow pseudopotential assumes a very simple form in Fourier space, i.e., vq≈1/q2, which is able to give rise to a finite string-order parameter in the topological regime. The results are analyzed by using an exact mapping from the quantum expectation values over the variational state to the classical partition function of the one-dimensional Coulomb gas of particles with charge q=±1. Here, two phases are present at low temperatures: the first one is a diluted gas of dipoles (bound neutral pairs of particles), which are randomly oriented (describing the large-D phase); the other one is a dense liquid of dipoles, which are aligned thanks to the residual dipole-dipole interactions (describing the topological phase, with the finite string order being related to the dipole alignment). Our results provide an insightful interpretation of the ground-state nature of the spin-1 antiferromagnetic Heisenberg model.
2023
108
10
1
9
104417
https://arxiv.org/abs/2305.14162
Piccioni, Davide; Apostoli, Christian; Becca, Federico; Mazzola, Guglielmo; Parola, Alberto; Sorella, Sandro; Santoro, Giuseppe E.
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Utilizza questo identificativo per citare o creare un link a questo documento: https://hdl.handle.net/20.500.11767/135879
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