SOLINMIX · Bright Solitons and Dynamics in Bose-Fermi Mixtures
FP7 — People (Marie Curie Actions)
- Duration
- 2009-08-01 → 2011-07-31
- EU contribution
- €160,183
- Participants
- 1
- Scheme
- MC-IEF
Lines connect the coordinator with its partners.
Results in brief
Bright solitons and dynamics in Bose-Fermi mixtures
This project resulted in the first observation of a pre-thermalised state in a non-equilibrium many-body quantum system, as described in the paper that was submitted by Gring et al., 2011. Pre-thermalisation was at the heart of the complex evolution of such systems on their pathway towards equilibrium. It was fundamental towards our understanding of how the laws of statistical mechanics came into play during the evolution of a non-equilibrium many-body system. This work was pursued in lieu of the realisation of a particularly good bosonic matter-wave interferometer. In parallel, in view of the other goals of the project, Bose-Fermi solitons were theoretically investigated (refer to Parker et al., arXiv:1108.3453, 2011), finding that p-wave interactions could be used to create extremely robust bright Bose-Fermi matter-wave solitons that were far more stable than their purely bosonic counterparts.
Data: CORDIS, © European Union
Project objective
The study of wave mechanics and propagation in non-linear media is a fundamental concept within physics. In particular, solitons (non-dispersive wave packets) are a general solution to the non-linear wave equation. Their existence is maintained by a non-linear interaction that counteracts the effects of dispersion. We will investigate bright solitons in an ultracold quantum-degenerate Bose-Fermi mixture where the required non-linear interaction is provided by the attraction between the Bose and Fermi components. To date, although theoretically predicted, solitons have not been observed in a Bose-Fermi mixture. To achieve our goal, we will use a Bose-Einstein condensate of the bosonic isotope Rb-87 and a spin-polarised degenerate Fermi gas of the fermionic isotope K-40. As well as being of fundamental scientific interest, the realisation and characterisation of bright matter-wave solitons in a Bose-Fermi mixture could facilitate future experiments in such areas as soliton interferometry and soliton-surface interactions for the development of sensitive surface probes, which would, respectively, have ramifications for the fields of precision measurement and surface science. The experiment will be carried out using an atom chip, an extremely good tool for studying quantum degenerate gases in a low-dimensional system (specifically an effectively 1D system), a proposed requirement for the realisation of bright solitons in Bose-Fermi mixtures. The main goals of the project are to ascertain experimentally under which conditions a Bose-Fermi mixture can be considered as one-dimensional, i.e., can be termed “effectively 1D”; the investigation of a new tool for varying atom-atom interaction strengths; the realisation of bright solitons in a Bose-Fermi mixture; the observation and characterisation of the formation and density profiles of single solitons and soliton trains; and, ultimately, the controlled collision of two bright matter-wave solitons.
Original text from CORDIS.
Participants
- TECHNISCHE UNIVERSITAET WIEN · WienCoordinatorAustria
Links
Data: CORDIS, © European Union
