Entanglement asymmetry in the ordered phase of many-body systems: the
Ising Field Theory
- URL: http://arxiv.org/abs/2307.12127v2
- Date: Wed, 27 Dec 2023 14:36:50 GMT
- Title: Entanglement asymmetry in the ordered phase of many-body systems: the
Ising Field Theory
- Authors: Luca Capizzi, Michele Mazzoni
- Abstract summary: Global symmetries of quantum many-body systems can be spontaneously broken.
In this study, we examine the entanglement asymmetry of a specific region.
We also establish a field theoretic framework in the replica theory using twist operators.
- Score: 0.0
- License: http://arxiv.org/licenses/nonexclusive-distrib/1.0/
- Abstract: Global symmetries of quantum many-body systems can be spontaneously broken.
Whenever this mechanism happens, the ground state is degenerate and one
encounters an ordered phase. In this study, our objective is to investigate
this phenomenon by examining the entanglement asymmetry of a specific region.
This quantity, which has recently been introduced in the context of $U(1)$
symmetry breaking, is extended to encompass arbitrary finite groups $G$. We
also establish a field theoretic framework in the replica theory using twist
operators. We explicitly demonstrate our construction in the ordered phase of
the Ising field theory in 1+1 dimensions, where a $\mathbb{Z}_2$ symmetry is
spontaneously broken, and we employ a form factor bootstrap approach to
characterise a family of composite twist fields. Analytical predictions are
provided for the entanglement asymmetry of an interval in the Ising model as
the length of the interval becomes large. We also propose a general conjecture
relating the entanglement asymmetry and the number of degenerate vacua,
expected to be valid for a large class of states, and we prove it explicitly in
some cases.
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