Entanglement between identical particles is a useful and consistent resource
Benjamin Morris, Benjamin Yadin, Matteo Fadel, Tilman Zibold, Philipp, Treutlein, Gerardo Adesso

TL;DR
This paper establishes a consistent theoretical framework for entanglement between identical particles, demonstrating its practical utility in quantum metrology and mode entanglement, with experimental validation using Bose-Einstein condensates.
Contribution
It provides a unified, operationally meaningful description of identical particle entanglement as a quantum resource, resolving longstanding debates.
Findings
Particle entanglement enhances phase estimation precision.
Particle entanglement translates into usable mode entanglement.
Experimental estimation of identical particle entanglement in Bose-Einstein condensates.
Abstract
The existence of fundamentally identical particles represents a foundational distinction between classical and quantum mechanics. Due to their exchange symmetry, identical particles can appear to be entangled -- another uniquely quantum phenomenon with far-reaching practical implications. However, a long-standing debate has questioned whether identical particle entanglement is physical or merely a mathematical artefact. In this work, we provide such particle entanglement with a consistent theoretical description as a quantum resource in processes frequently encountered in optical and cold atomic systems. This leads to a plethora of applications of immediate practical impact. On one hand, we show that the metrological advantage for estimating phase shifts in systems of identical bosons amounts to a measure of their particle entanglement, with a clearcut operational meaning. On the other…
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