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Matter Wave Turbulence: Beyond Kinetic Scaling

Quantum Gases 2014-11-20 v1 Other Condensed Matter High Energy Physics - Phenomenology Fluid Dynamics

Abstract

Turbulent scaling phenomena are studied in an ultracold Bose gas away from thermal equilibrium. Fixed points of the dynamical evolution are characterized in terms of universal scaling exponents of correlation functions. The scaling behavior is determined analytically in the framework of quantum field theory, using a nonperturbative approximation of the two-particle irreducible effective action. While perturbative Kolmogorov scaling is recovered at higher energies, scaling solutions with anomalously large exponents arise in the infrared regime of the turbulence spectrum. The extraordinary enhancement in the momentum dependence of long-range correlations could be experimentally accessible in dilute ultracold atomic gases. Such experiments have the potential to provide insight into dynamical phenomena directly relevant also in other present-day focus areas like heavy-ion collisions and early-universe cosmology.

Keywords

Cite

@article{arxiv.0912.4183,
  title  = {Matter Wave Turbulence: Beyond Kinetic Scaling},
  author = {Christian Scheppach and Jürgen Berges and Thomas Gasenzer},
  journal= {arXiv preprint arXiv:0912.4183},
  year   = {2014}
}

Comments

18 pages, 2 figures

R2 v1 2026-06-21T14:26:47.772Z