paper

Exact Entanglement Swapping through Single-Occupancy Measurements in Gaussian Fermion States

arXiv:2608.29933

Abstract

We determine the exact entanglement structure of the conditional state obtained by measuring corresponding rungs () in two identical copies of an arbitrary half-filled free fermion Gaussian state and post-selecting the same normalized single-fermion state (, where 0 and 1 denote the fermion occupancy on each sites) on each rung. For , the conditional wavefunction generally depends on the initial state. Nevertheless, whenever the selected outcome has nonzero probability, the state on the unmeasured sites remains Gaussian and factorizes exactly into different orthogonal modes including inter-copy entangling modes and spectator modes localized in one copy. Consequently, the entanglement entropy between the unmeasured parts of the two copies is , independent of the initial state, where . The success probability is given by , determined solely by the initial correlations and independent of (,). Equal-weight Bell post-selection serves as a special case that achieves the maximal entanglement swapping.

9 pages, 1 figures