Study of the long-range transverse field Ising model with fermionic
Gaussian states
- URL: http://arxiv.org/abs/2301.02939v1
- Date: Sat, 7 Jan 2023 21:23:53 GMT
- Title: Study of the long-range transverse field Ising model with fermionic
Gaussian states
- Authors: Michael P. Kaicher, Davide Vodola, Simon B. J\"ager
- Abstract summary: We numerically study the one-dimensional long-range Transverse Field Ising Model (TFIM) in the antiferromagnetic regime at zero temperature.
The spin-spin interaction extends to all spins in the lattice and decays as $1/ralpha$, where $r$ denotes the distance between two spins and $alpha$ is a tunable exponent.
- Score: 0.0
- License: http://creativecommons.org/licenses/by/4.0/
- Abstract: We numerically study the one-dimensional long-range Transverse Field Ising
Model (TFIM) in the antiferromagnetic (AFM) regime at zero temperature using
Generalized Hartree-Fock (GHF) theory. The spin-spin interaction extends to all
spins in the lattice and decays as $1/r^\alpha$, where $r$ denotes the distance
between two spins and $\alpha$ is a tunable exponent. We map the spin operators
to Majorana operators and approximate the ground state of the Hamiltonian with
a Fermionic Gaussian State (FGS). Using this approximation, we calculate the
ground state energy and the entanglement entropy which allows us to map the
phase diagram for different values of $\alpha$. In addition, we compute the
scaling behavior of the entanglement entropy with the system size to determine
the central charge at criticality for the case of $\alpha>1$. For $\alpha<1$ we
find a logarithmic divergence of the entanglement entropy even far away from
the critical point, a feature of systems with long-range interactions. We
provide a detailed comparison of our results to outcomes of Density Matrix
Renormalization Group (DMRG) and the Linked Cluster Expansion (LCE) methods. In
particular, we find excellent agreement of GHF with DMRG and LCE in the weak
long-range regime $\alpha\geq 1$, and qualitative agreement with DMRG in the
strong-long range regime $\alpha \leq 1$. Our results highlight the power of
the computationally efficient GHF method in simulating interacting quantum
systems.
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