Microwave Experiments Simulating Quantum Search and Directed Transport in Artificial Graphene
Abstract
A series of quantum search algorithms have been proposed recently providing an algebraic speedup compared to classical search algorithms from to , where is the number of items in the search space. In particular, devising searches on regular lattices has become popular in extending Grover's original algorithm to spatial searching. Working in a tight-binding setup, it could be demonstrated, theoretically, that a search is possible in the physically relevant dimensions 2 and 3 if the lattice spectrum possesses Dirac points. We present here a proof of principle experiment implementing wave search algorithms and directed wave transport in a graphene lattice arrangement. The idea is based on bringing localized search states into resonance with an extended lattice state in an energy region of low spectral density---namely, at or near the Dirac point. The experiment is implemented using classical waves in a microwave setup containing weakly coupled dielectric resonators placed in a honeycomb arrangement, i.e., artificial graphene. Furthermore, we investigate the scaling behavior experimentally using linear chains.
Cite
@article{arxiv.1409.2382,
title = {Microwave Experiments Simulating Quantum Search and Directed Transport in Artificial Graphene},
author = {Julian Böhm and Matthieu Bellec and Fabrice Mortessagne and Ulrich Kuhl and Sonja Barkhofen and Stefan Gehler and Hans-Jürgen Stöckmann and Iain Foulger and Sven Gnutzmann and Gregor Tanner},
journal= {arXiv preprint arXiv:1409.2382},
year = {2015}
}
Comments
5 pages, 5 figures, supplementary material: 4 videos