From entanglement certification with quench dynamics to multipartite entanglement of interacting fermions
arXiv:2005.03049 · doi:10.1103/PhysRevResearch.3.L032051
Abstract
Multipartite entanglement, such as witnessed through the quantum Fisher information (QFI), is a crucial resource for quantum technologies, but its experimental certification is highly challenging. Here, we propose an experimentally friendly protocol to measure the QFI. It relies on recording the short-time dynamics of simple observables after a quench from a thermal state, works for spins, bosons, and fermions, and can be implemented in standard cold-atom experiments and other platforms with temporal control over the system Hamiltonian. To showcase the protocol, we simulate it for the one-dimensional Fermi--Hubbard model. Further, we establish a family of bounds connecting the QFI to multipartite mode entanglement for fermionic systems, which enable the detection of multipartite entanglement at sizable temperatures. Our work paves a way to experimentally accessing entanglement for quantum enhanced metrology.
5+7 pages, 4+1 figures
References in corpus (14)
- Entanglement detection
- Ultracold atomic gases in optical lattices: mimicking condensed matter physics and beyond
- Theory of ultracold Fermi gases
- Quantum metrology from a quantum information science perspective
- Twin matter waves for interferometry beyond the classical limit
- Fisher Information and entanglement of non-Gaussian spin states
- Entanglement Certification From Theory to Experiment
- Ultracold atoms out of equilibrium
- Observation of gauge invariance in a 71-site Bose-Hubbard quantum simulator
- Two Fermions in a double well: Exploring a fundamental building block of the Hubbard model
- Detecting multiparticle entanglement of Dicke states
- Fermionic mode entanglement in quantum information
- Experimental realisation of multipartite entanglement via quantum Fisher information in a uniform antiferromagnetic quantum spin chain
- Multipartite entanglement structure in the Eigenstate Thermalization Hypothesis
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