Quantum correlations and Basis-Independent Coherence Distribution in Two Gravitational Cat States
Mostafa Mansour, Mansoura Oumennana
Abstract
We study the distribution of quantum correlations and basis-independent coherence in a pair of massive particles confined in a double-well potential and coupled through their mutual Newtonian gravitational interaction. Non-classical correlations are characterized using Bures distance of entanglement and quantum discord, while coherence is quantified through the square root of the quantum Jensen--Shannon divergence (QJSD) from the maximally mixed state, yielding a measure that is invariant under arbitrary unitary transformations and is therefore genuinely basis-independent. The total coherence CT decomposes into two operationally distinct contributions: the collective coherence CC, which captures quantum correlations between the two subsystems, and the localized coherence CL, which captures the intrinsic quantum coherence of each individual subsystem. We analyze how temperature T, the gravitational coupling Δ, and the single-particle energy scale w govern the redistribution of coherence between its collective and localized components. Our results show that CL is more robust against thermal fluctuations than CC, and that increasing Δ preferentially enhances collective coherence by strengthening gravitationally induced inter-particle correlations.
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