Entanglement Entropy for Screened Interactions via Dimensional Mapping to Harmonic Oscillators
Akshay Kulkarni, Rahul Nigam

TL;DR
This paper develops an oscillator-based framework to analytically compute entanglement entropy corrections due to screened interactions, revealing the roles of anharmonic effects and establishing a systematic perturbative approach.
Contribution
It introduces a systematic perturbative method using dimensional mapping to harmonic oscillators for calculating entanglement entropy with screened interactions.
Findings
Analytic expressions for small eigenvalues of the reduced density matrix.
Order corrections to entanglement entropy from anharmonic interactions.
Clarification of harmonic renormalization versus non-Gaussian effects in entanglement.
Abstract
We investigate interaction-induced corrections to entanglement entropy by mapping a screened Yukawa-type interaction to an effective harmonic oscillator system with controlled anharmonic perturbations. Starting from a one-dimensional interaction , we reformulate the problem in terms of a four-dimensional radial oscillator, where the finite screening length generates a systematic hierarchy of polynomial interactions in the radial coordinate. This mapping enables a controlled Rayleigh-Schrodinger perturbative treatment of the ground-state wavefunction and an explicit spectral analysis of the reduced density matrix. Working in the weak-screening regime, we compute the leading non-Gaussian correction arising from the quartic interaction , which appears at order in the expansion of the Yukawa-like potential. We obtain closed analytic…
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Taxonomy
TopicsQuantum many-body systems · Quantum Information and Cryptography · Quantum Mechanics and Non-Hermitian Physics
