Two and three particles interacting in a one-dimensional trap
arXiv:1604.01661 · doi:10.1119/1.4985063
Abstract
We outline a procedure for using matrix mechanics to compute energy eigenvalues and eigenstates for two and three interacting particles in a confining trap, in one dimension. Such calculations can bridge a gap in the undergraduate physics curriculum between single-particle and many-particle quantum systems, and can also provide a pathway from standard quantum mechanics course material to understanding current research on cold-atom systems. In particular we illustrate the notion of "fermionization" and how it occurs not only for the ground state in the presence of strong repulsive interactions, but also for excited states, in both the strongly attractive and strongly repulsive regimes.
15 pages, 11 figures, references added, some material rewritten, and some relegated to a second appendix, to be published in Am. J. Phys
References in corpus (5)
- Many-Body Physics with Ultracold Gases
- Tunable Spin-Orbit Coupling via Strong Driving in Ultracold Atom Systems
- Three attractively interacting fermions in a harmonic trap: Exact solution, ferromagnetism, and high-temperature thermodynamics
- Exploring the few- to many-body crossover using cold atoms in one dimension
- Two and three particles interacting in a one-dimensional trap