Direct measurement of a nonlocal entangled quantum state
arXiv:1910.10933 · doi:10.1103/PhysRevLett.123.150402
Abstract
Entanglement and wave function description are two of the core concepts that make quantum mechanics such a unique theory. A method to directly measure the wave function, using Weak Values, was demonstrated by Lundeen et al., Nature \textbf{474}, 188(2011). However, it is not applicable to a scenario of two disjoint systems, where nonlocal entanglement can be a crucial element since that requires obtaining the Weak Values of nonlocal observables. Here, for the first time, we propose a method to directly measure a nonlocal wave function of a bipartite system, using Modular Values. The method is experimentally implemented for a photon pair in a hyper-entangled state, i.e. entangled both in polarization and momentum degrees of freedom.
13 pages, 4 figures
References in corpus (7)
- Experimental joint weak measurement on a photon pair as a probe of Hardy's Paradox
- Direct observation of Hardy's paradox by joint weak measurement with an entangled photon pair
- Compressive Direct Measurement of the Quantum Wave Function
- Modular values and weak values of quantum observables
- Sequential measurement of conjugate variables as an alternative quantum state tomography
- Quantum optical reconstruction scheme using weak values
- Experimental nonlocal steering of Bohmian trajectories