Fermion confinement via Quantum Walks in 2D+1 and 3D+1 spacetime
Abstract
We analyze the properties of a two and three dimensional quantum walk that are inspired by the idea of a brane-world model put forward by Rubakov and Shaposhnikov [1]. In that model, particles are dynamically confined on the brane due to the interaction with a scalar field. We translated this model into an alternate quantum walk with a coin that depends on the external field, with a dependence which mimics a domain wall solution. As in the original model, fermions (in our case, the walker), become localized in one of the dimensions, not from the action of a random noise on the lattice (as in the case of Anderson localization), but from a regular dependence in space. On the other hand, the resulting quantum walk can move freely along the "ordinary" dimension.
Cite
@article{arxiv.1612.08027,
title = {Fermion confinement via Quantum Walks in 2D+1 and 3D+1 spacetime},
author = {I. Marquez-Martin and G. Di Molfetta and A. Perez},
journal= {arXiv preprint arXiv:1612.08027},
year = {2017}
}
Comments
5 pages, 6 figures