Approximations for the free evolution of self-gravitating quantum particles
arXiv:1503.02622 · doi:10.1103/PhysRevA.94.022101
Abstract
The evolution of the centre-of-mass wave-function for a mesoscopic particle according to the Schrödinger-Newton equation can be approximated by a harmonic potential, if the wave-function is narrow compared to the size of the particle. It was noticed by Colin et al. [Phys. Rev. A, 93, 062102 (2016)] that, in the regime where self-gravitational effects are weak, intermediate and wider wave-functions may be approximated by a harmonic potential as well, but with a width dependent coupling, leading to a time evolution that is determined only by a differential equation for the width of a Gaussian wave-function as a single parameter. Such an approximation results in considerably less computational effort in order to predict the self-gravitational effects on the wave-function dynamics. Here, we provide an alternative approach to this kind of approximation, including a rigorous derivation of the equations of motion for an initially Gaussian wave packet, under the assumption that its shape is conserved. Our result deviates to some degree from the result by Colin et al., specifically in the limit of wide wave-functions.
Final draft accepted for publication by Phys. Rev. A
References in corpus (11)
- Gravitation and quantummechanical localization of macroobjects
- The Schrödinger-Newton equation and its foundations
- The Schrödinger-Newton equation as non-relativistic limit of self-gravitating Klein-Gordon and Dirac fields
- Why Eppley and Hannah's Experiment Isn't
- Measurement Analysis and Quantum Gravity
- Optomechanical test of the Schrödinger-Newton equation
- Comments on Proposed Gravitational Modifications of Schrodinger Dynamics and their Experimental Implications
- Centre-of-mass motion in multi-particle Schroedinger-Newton dynamics
- Crucial tests of macrorealist and semi-classical gravity models with freely falling mesoscopic nanospheres
- Can quantum systems succumb to their own (gravitational) attraction?
- Effects of Newtonian gravitational self-interaction in harmonically trapped quantum systems
Cited by in corpus (10)
- Gravitational Decoherence
- The Deep Space Quantum Link: Prospective Fundamental Physics Experiments using Long-Baseline Quantum Optics
- Gravitational Decoherence: A Thematic Overview
- Short distance modification of the quantum virial theorem
- Correlations and signaling in the Schrödinger-Newton model
- Testing Gravitational Self-interaction via Matter-Wave Interferometry
- Emergence of Classicality in Stern-Gerlach Experiment via Self-Gravity
- Short Distance Modification of a Gravitational System and its Optical Analog
- Newtonian self-gravity in trapped quantum systems and experimental tests
- Dephasing and inhibition of spin interference from semi-classical self-gravitation