Macroscopic Quantum Mechanics in a Classical Spacetime
Abstract
We apply the many-particle Schrödinger-Newton equation, which describes the coevolution of a many-particle quantum wave function and a classical space-time geometry, to macroscopic mechanical objects. By averaging over motions of the objects’ internal degrees of freedom, we obtain an effective Schrödinger-Newton equation for their centers of mass, which can be monitored and manipulated at quantum levels by state-of-the-art optomechanics experiments. For a single macroscopic object moving quantum mechanically within a harmonic potential well, its quantum uncertainty is found to evolve at a frequency different from its classical eigenfrequency—with a difference that depends on the internal structure of the object—and can be observable using current technology. For several objects, the Schrödinger-Newton equation predicts semiclassical motions just like Newtonian physics, yet quantum uncertainty cannot be transferred from one object to another.
- Publication:
-
Physical Review Letters
- Pub Date:
- April 2013
- DOI:
- arXiv:
- arXiv:1210.0457
- Bibcode:
- 2013PhRvL.110q0401Y
- Keywords:
-
- 03.65.Ta;
- 03.75.-b;
- 42.50.Pq;
- Foundations of quantum mechanics;
- measurement theory;
- Matter waves;
- Cavity quantum electrodynamics;
- micromasers;
- General Relativity and Quantum Cosmology
- E-Print:
- 5+3 pages, 1 figure