| Literature DB >> 25775515 |
Simon Braun1, Mathis Friesdorf2, Sean S Hodgman1, Michael Schreiber1, Jens Philipp Ronzheimer1, Arnau Riera3, Marco Del Rey4, Immanuel Bloch1, Jens Eisert2, Ulrich Schneider5.
Abstract
The dynamics of quantum phase transitions pose one of the most challenging problems in modern many-body physics. Here, we study a prototypical example in a clean and well-controlled ultracold atom setup by observing the emergence of coherence when crossing the Mott insulator to superfluid quantum phase transition. In the 1D Bose-Hubbard model, we find perfect agreement between experimental observations and numerical simulations for the resulting coherence length. We, thereby, perform a largely certified analog quantum simulation of this strongly correlated system reaching beyond the regime of free quasiparticles. Experimentally, we additionally explore the emergence of coherence in higher dimensions, where no classical simulations are available, as well as for negative temperatures. For intermediate quench velocities, we observe a power-law behavior of the coherence length, reminiscent of the Kibble-Zurek mechanism. However, we find nonuniversal exponents that cannot be captured by this mechanism or any other known model.Keywords: Mott insulator; nonequilibrium dynamics; optical lattice; quantum simulation; ultracold atoms
Year: 2015 PMID: 25775515 PMCID: PMC4378442 DOI: 10.1073/pnas.1408861112
Source DB: PubMed Journal: Proc Natl Acad Sci U S A ISSN: 0027-8424 Impact factor: 11.205