Symmetry resolved entanglement in Lifshitz field theories
M. Reza Mohammadi Mozaffar, Ali Mollabashi
TLDR
This paper investigates symmetry-resolved entanglement in non-relativistic Lifshitz field theories, revealing distinct features and equipartition behaviors.
Key contributions
- Investigates symmetry-resolved entanglement in Lifshitz scalar and fermionic models.
- Computes Renyi and von Neumann entropies using charged moments and the correlator method.
- Finds approximate equipartition in Lifshitz scalars (large-z) and genuine equipartition in fermions (relativistic limit).
- Highlights the interplay of conserved charges, subsystem size, mass, and dynamical scaling.
Why it matters
This study provides a framework to explore operationally accessible entanglement in non-relativistic systems. Its insights are relevant for experimental platforms like cold atom setups and mesoscopic systems, enabling particle-number-resolved measurements.
Original Abstract
We investigate symmetry-resolved entanglement in non-relativistic quantum field theories, including complex Lifshitz scalar chains and Lifshitz fermionic models. Using charged moments and the correlator method, we compute symmetry-resolved Renyi and von Neumann entropies and analyze their dependence on subsystem size, charge, mass, and the dynamical exponent z. Our results reveal distinct features of non-relativistic entanglement. In Lifshitz scalar theories, approximate equipartition among charge sectors emerges in the large-z regime, with configurational entropy dominating, whereas Lifshitz fermionic models exhibit genuine equipartition only in the relativistic limit, with fluctuation entropy prevailing. These findings highlight a rich interplay between conserved charges, subsystem size, mass, and dynamical scaling, and provide a framework to explore operationally accessible entanglement in non-relativistic systems. Our study offers insights relevant to experimental platforms such as cold atom setups and mesoscopic systems, where particle-number-resolved measurements can probe symmetry-resolved entanglement.
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