| Literature DB >> 28621968 |
Brandon M Anderson1, Logan W Clark1,2, Jennifer Crawford1, Andreas Glatz3,4, Igor S Aranson4,5, Peter Scherpelz6, Lei Feng1,2, Cheng Chin1,2, K Levin1.
Abstract
We address band engineering in the presence of periodic driving by numerically shaking a lattice containing a bosonic condensate. By not restricting to simplified band structure models we are able to address arbitrary values of the shaking frequency, amplitude, and interaction strengths g. For "near-resonant" shaking frequencies with moderate g, a quantum phase transition to a finite momentum superfluid is obtained with Kibble-Zurek scaling and quantitative agreement with experiment. We use this successful calibration as a platform to support a more general investigation of the interplay between (one particle) Floquet theory and the effects associated with arbitrary g. Band crossings lead to superfluid destabilization, but where this occurs depends on g in a complicated fashion.Year: 2017 PMID: 28621968 DOI: 10.1103/PhysRevLett.118.220401
Source DB: PubMed Journal: Phys Rev Lett ISSN: 0031-9007 Impact factor: 9.161