Relativistic quantum bouncing particles in a homogeneous gravitational field
Abstract
In this paper, we study the relativistic effect on the wave functions for a bouncing particle in a gravitational field. Motivated by the equivalence principle, we investigate the Klein-Gordon and Dirac equations in Rindler coordinates with the boundary conditions mimicking a uniformly accelerated mirror in Minkowski space. In the nonrelativistic limit, all these models in the comoving frame reduce to the familiar eigenvalue problem for the Schr\"odinger equation with a fixed floor in a linear gravitational potential, as expected. We find that the transition frequency between two energy levels of a bouncing Dirac particle is greater than the counterpart of a Klein-Gordon particle, while both are greater than their nonrelativistic limit. The different corrections to eigen-energies of particles of different nature are associated with the different behaviors of their wave functions around the mirror boundary.
Cite
@article{arxiv.2005.13264,
title = {Relativistic quantum bouncing particles in a homogeneous gravitational field},
author = {Ar Rohim and Kazushige Ueda and Kazuhiro Yamamoto and Shih-Yuin Lin},
journal= {arXiv preprint arXiv:2005.13264},
year = {2022}
}
Comments
18 pages, 3 figures, 2 tables, published version