Interplay between Symmetry Breaking and Interactions in a Symmetry Protected Topological Phase

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Hauptverfasser: Pasnoori, Parameshwar R., Azaria, Patrick
Format: Preprint
Veröffentlicht: 2025
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author Pasnoori, Parameshwar R.
Azaria, Patrick
author_facet Pasnoori, Parameshwar R.
Azaria, Patrick
contents We solve the one dimensional massive Thirring model or equivalently the sine-Gordon model in the repulsive regime with general Dirichlet boundary conditions, which are characterized by two boundary fields $ϕ_{L,R}$ associated with the left and right boundaries respectively. In the presence of these boundary fields, which explicitly break the charge conjugation symmetry, the system exhibits a duality symmetry which changes the sign of the mass parameter $m_0$ and shifts the values of the boundary fields by $ϕ_{L,R}\rightarrow ϕ_{L,R}+π$. When the mass parameter $m_0<0$ and the boundary fields $ϕ_{L,R}=0$, or equivalently due to duality symmetry, when the mass parameter $m_0>0$ and the boundary fields $ϕ_{L,R}=π$, the system is at a trivial point. Here, the ground state is unique just as in the case of periodic boundary conditions. In contrast, when the mass parameter $m_0<0$ and the boundary fields $ϕ_{L,R}=π$, and equivalently due to the duality symmetry, when the mass parameter $m_0>0$ and the boundary fields $ϕ_{L,R}=0$, the system is at a topological point where it exhibits a symmetry protected topological (SPT) phase, which is characterized by the existence of zero energy bound states at both the boundaries. For a given value of the mass parameter $m_0$, we find that these phases remain stable in the presence of symmetry breaking fields at the boundary, provided they are smaller than certain critical values which depend on the strength of the interactions in the bulk. Hence, we show that the stability of the SPT and trivial phases depends on the interplay of the symmetry breaking boundary field values and the bulk interaction strength.
format Preprint
id arxiv_https___arxiv_org_abs_2506_19771
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Interplay between Symmetry Breaking and Interactions in a Symmetry Protected Topological Phase
Pasnoori, Parameshwar R.
Azaria, Patrick
High Energy Physics - Theory
Strongly Correlated Electrons
Mathematical Physics
We solve the one dimensional massive Thirring model or equivalently the sine-Gordon model in the repulsive regime with general Dirichlet boundary conditions, which are characterized by two boundary fields $ϕ_{L,R}$ associated with the left and right boundaries respectively. In the presence of these boundary fields, which explicitly break the charge conjugation symmetry, the system exhibits a duality symmetry which changes the sign of the mass parameter $m_0$ and shifts the values of the boundary fields by $ϕ_{L,R}\rightarrow ϕ_{L,R}+π$. When the mass parameter $m_0<0$ and the boundary fields $ϕ_{L,R}=0$, or equivalently due to duality symmetry, when the mass parameter $m_0>0$ and the boundary fields $ϕ_{L,R}=π$, the system is at a trivial point. Here, the ground state is unique just as in the case of periodic boundary conditions. In contrast, when the mass parameter $m_0<0$ and the boundary fields $ϕ_{L,R}=π$, and equivalently due to the duality symmetry, when the mass parameter $m_0>0$ and the boundary fields $ϕ_{L,R}=0$, the system is at a topological point where it exhibits a symmetry protected topological (SPT) phase, which is characterized by the existence of zero energy bound states at both the boundaries. For a given value of the mass parameter $m_0$, we find that these phases remain stable in the presence of symmetry breaking fields at the boundary, provided they are smaller than certain critical values which depend on the strength of the interactions in the bulk. Hence, we show that the stability of the SPT and trivial phases depends on the interplay of the symmetry breaking boundary field values and the bulk interaction strength.
title Interplay between Symmetry Breaking and Interactions in a Symmetry Protected Topological Phase
topic High Energy Physics - Theory
Strongly Correlated Electrons
Mathematical Physics
url https://arxiv.org/abs/2506.19771