| Literature DB >> 27634528 |
Martin Boll1, Timon A Hilker1, Guillaume Salomon1, Ahmed Omran1, Jacopo Nespolo2, Lode Pollet2, Immanuel Bloch3, Christian Gross4.
Abstract
The repulsive Hubbard Hamiltonian is one of the foundational models describing strongly correlated electrons and is believed to capture essential aspects of high-temperature superconductivity. Ultracold fermions in optical lattices allow for the simulation of the Hubbard Hamiltonian with control over kinetic energy, interactions, and doping. A great challenge is to reach the required low entropy and to observe antiferromagnetic spin correlations beyond nearest neighbors, for which quantum gas microscopes are ideal. Here, we report on the direct, single-site resolved detection of antiferromagnetic correlations extending up to three sites in spin-1/2 Hubbard chains, which requires entropies per particle well below s* = ln(2). The simultaneous detection of spin and density opens the route toward the study of the interplay between magnetic ordering and doping in various dimensions.Entities:
Year: 2016 PMID: 27634528 DOI: 10.1126/science.aag1635
Source DB: PubMed Journal: Science ISSN: 0036-8075 Impact factor: 47.728