Ultracold atoms in disordered potentials: Elastic scattering time in the strong scattering regime

  • Adrien Signoles
  • , Baptiste Lecoutre
  • , Jérémie Richard
  • , Lih King Lim
  • , Vincent Denechaud
  • , Valentin V. Volchkov
  • , Vasiliki Angelopoulou
  • , Fred Jendrzejewski
  • , Alain Aspect
  • , Laurent Sanchez-Palencia
  • , Vincent Josse

Research output: Contribution to journalArticlepeer-review

Abstract

We study the elastic scattering time of ultracold atoms propagating in optical disordered potentials in the strong scattering regime, going beyond the recent work of Richard et al (2019 Phys. Rev. Lett. 122 100403). There, we identified the crossover between the weak and the strong scattering regimes by comparing direct measurements and numerical simulations to the first order Born approximation. Here we focus specifically on the strong scattering regime, where the first order Born approximation is not valid anymore and the scattering time is strongly influenced by the nature of the disorder. To interpret our observations, we connect the scattering time to the profiles of the spectral functions that we estimate using higher order Born perturbation theory or self-consistent Born approximation. The comparison reveals that self-consistent methods are well suited to describe for Gaussian-distributed disorder, but fails for laser speckle disorder. For the latter, we show that the peculiar profiles of the spectral functions, as measured independently in Volchkov et al (2018 Phys. Rev. Lett. 120 060404), must be taken into account. Altogether our study characterizes the validity range of usual theoretical methods to predict the elastic scattering time of matter waves, which is essential for future close comparison between theory and experiments, for instance regarding the ongoing studies on Anderson localization.

Original languageEnglish
Article number105002
JournalNew Journal of Physics
Volume21
Issue number10
DOIs
Publication statusPublished - 7 Oct 2019

Keywords

  • Anderson localization
  • disordered systems
  • quantum gases

Fingerprint

Dive into the research topics of 'Ultracold atoms in disordered potentials: Elastic scattering time in the strong scattering regime'. Together they form a unique fingerprint.

Cite this