The time as an emergent property of quantum mechanics, a synthetic description of a first experimental approach
arXiv:1502.03264 · doi:10.1088/1742-6596/626/1/012019
Abstract
The "problem of time" in present physics substantially consists in the fact that a straightforward quantization of the general relativistic evolution equation and constraints generates for the Universe wave function the Wheeler-De Witt equation, which describes a static Universe. Page and Wootters considered the fact that there exist states of a system composed by entangled subsystems that are stationary, but one can interpret the component subsystems as evolving: this leads them to suppose that the global state of the universe can be envisaged as one of this static entangled state, whereas the state of the subsystems can evolve. Here we synthetically present an experiment, based on PDC polarization entangled photons, that allows showing with a practical example a situation where this idea works, i.e. a subsystem of an entangled state works as a "clock" of another subsystem.
References in corpus (5)
- Free-Space distribution of entanglement and single photons over 144 km
- Reference frames, superselection rules, and quantum information
- Research on Hidden Variable Theories: a review of recent progresses
- Conditional probabilities with Dirac observables and the problem of time in quantum gravity
- Dispersion spreading of biphotons in optical fibres and two-photon interference