Entanglement dynamics of Multi-Level Atoms embedded in Photonic Crystals: Leveraging Resonant Dipole-Dipole Interactions and Quantum Interference
Nancy Ghangas, Shubhrangshu Dasgupta

TL;DR
This paper explores how resonant dipole-dipole interactions and quantum interference influence entanglement dynamics of multi-level atoms in photonic crystals, revealing conditions for entanglement preservation and oscillations.
Contribution
It provides analytical and numerical insights into the roles of interactions and interference in controlling entanglement in structured photonic environments.
Findings
Resonant interactions dominate at specific interatomic distances.
Anti-parallel dipoles enhance entanglement preservation.
Orthogonal dipoles cause oscillatory entanglement patterns.
Abstract
We present a comprehensive investigation of entanglement dynamics in multi-level V-type atomic systems embedded within photonic crystals. We mainly focus on the synergistic roles of resonant dipole-dipole interactions and quantum interference through analytical modeling and numerical simulations using the Schrodinger equation. Key findings reveal that resonant interaction dominates when the interatomic distance is comparable to the localization length of photon-atom bound states lying in the bandgap region. For atoms with anti-parallel dipole orientations, both initially entangled and separable states exhibit robust entanglement preservation due to strong collective interactions. Conversely, when dipoles are oriented orthogonally, initially entangled states exhibit unique oscillatory patterns in their entanglement dynamics. This effect arises from the formation of dark states due to…
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Taxonomy
TopicsPhotonic Crystals and Applications
