Quantum entanglement of identical particles by standard information-theoretic notions
Quantum Physics
Quantum information
FOS: Physical sciences
Quantum information; Quantum mechanics; Identical Particles; Entanglement
Identical Particles
Quantum mechanics
01 natural sciences
Settore FIS/03 - Fisica Della Materia
Article
Entanglement
0103 physical sciences
Quantum Physics (quant-ph)
DOI:
10.1038/srep20603
Publication Date:
2016-02-09T10:40:48Z
AUTHORS (2)
ABSTRACT
AbstractQuantum entanglement of identical particles is essential in quantum information theory. Yet, its correct determination remains an open issue hindering the general understanding and exploitation of many-particle systems. Operator-based methods have been developed that attempt to overcome the issue. Here we introduce a state-based method which, as second quantization, does not label identical particles and presents conceptual and technical advances compared to the previous ones. It establishes the quantitative role played by arbitrary wave function overlaps, local measurements and particle nature (bosons or fermions) in assessing entanglement by notions commonly used in quantum information theory for distinguishable particles, like partial trace. Our approach furthermore shows that bringing identical particles into the same spatial location functions as an entangling gate, providing fundamental theoretical support to recent experimental observations with ultracold atoms. These results pave the way to set and interpret experiments for utilizing quantum correlations in realistic scenarios where overlap of particles can count, as in Bose-Einstein condensates, quantum dots and biological molecular aggregates.
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