Crucial tests of macrorealist and semi-classical gravity models with freely falling mesoscopic nanospheres
arXiv:1402.5653 · doi:10.1103/PhysRevA.93.062102
Abstract
Recently, several proposals have been made to test the quantum superposition principle in the mesoscopic regime. Most of these tests consist of a careful measurement of the loss of interference due to decoherence. Here we consider, instead, the spread in position of a freely falling nanosphere. We study in depth the dependence of this spread on self-gravity in the presence of decoherence (exotic and non-exotic). We show that the influence of self-gravity is robust in the presence of weak decoherence, and quantify this robustness by introducing a new parameter, the critical decoherence, aimed at estimating the critical value above which self-gravity is overwhelmed by decoherence. We also emphasise the crucial role played by the spread of the initial wave packet for the sensitivity of free-fall experiments to decoherence.
Abridged and modified version accepted for publication in Physical Review A. 17 pages, 6 figures
References in corpus (16)
- Large Quantum Superpositions and Interference of Massive Nanometer-Sized Objects
- Testing the limits of quantum mechanical superpositions
- Gravitation and quantummechanical localization of macroobjects
- Cavity cooling a single charged nanoparticle
- Optically Levitating Dielectrics in the Quantum Regime: Theory and Protocols
- Macroscopicity of Mechanical Quantum Superposition States
- Real-time single-molecule imaging of quantum interference
- Optomechanical sensing of spontaneous wave-function collapse
- Macroscopic quantum resonators (MAQRO): 2015 Update
- Non-interferometric Test of Collapse Models in Optomechanical Systems
- Optomechanical test of the Schrödinger-Newton equation
- A proposal for the experimental detection of CSL induced random walk
- Master equation approach to optomechanics with arbitrary dielectrics
- On the precise connection between the GRW master-equation and master-equations for the description of decoherence
- A possible experimental test of quantized gravity
- Can quantum systems succumb to their own (gravitational) attraction?
Cited by in corpus (16)
- Gravitational Decoherence
- Massive quantum systems as interfaces of quantum mechanics and gravity
- Testing the foundations of quantum physics in space Interferometric and non-interferometric tests with Large Particles
- Gravitational Decoherence of Dark Matter
- Space-time fluctuations and a stochastic Schrödinger-Newton equation
- General Relativistic Decoherence with Applications to Dark Matter Detection
- Decoherence from General Relativity
- Effects of Newtonian gravitational self-interaction in harmonically trapped quantum systems
- Approximations for the free evolution of self-gravitating quantum particles
- Bounding quantum gravity inspired decoherence using atom interferometry
- Correlations and signaling in the Schrödinger-Newton model
- Classical and quantum: a conflict of interest
- Newtonian self-gravity in trapped quantum systems and experimental tests
- Do(es the influence of) empty waves survive in configuration space?
- Generalized guidance equation for peaked quantum solitons: the single particle case
- Dephasing and inhibition of spin interference from semi-classical self-gravitation