PaperPanorama

Nuclear Theory·nucl-th

Friday·December 12, 2014

4 papers2 primary·2 cross-listed

  1. 03

    [Submitted on 9 Dec 2014] (cross-list from hep-th)

    Soft Theorems from Effective Field Theory

    Andrew J. Larkoski🇺🇸 · Duff Neill🇺🇸 · Iain W. Stewart🇺🇸

    The singular limits of massless gauge theory amplitudes are described by an effective theory, called soft-collinear effective theory (SCET), which has been applied most successfully to make all-orders predictions for observables in collider physics and weak decays. At tree-level, the emission of a soft gauge boson at subleading order in its energy is given by the Low-Burnett-Kroll theorem, with the angular momentum operator acting on a lower-point amplitude. For well separated particles at tree-level, we prove the Low-Burnett-Kroll theorem using matrix elements of subleading SCET Lagrangian and operator insertions which are individually gauge invariant. These contributions are uniquely determined by gauge invariance and the reparametrization invariance (RPI) symmetry of SCET. RPI in SCET is connected to the infinite-dimensional asymptotic symmetries of the S-matrix. The Low-Burnett-Kroll theorem is generically spoiled by on-shell corrections, including collinear loops and collinear emissions. We demonstrate this explicitly both at tree-level and at one-loop. The effective theory correctly describes these configurations, and we generalize the Low-Burnett-Kroll theorem into a new one-loop subleading soft theorem for amplitudes. Our analysis is presented in a manner that illustrates the wider utility of using effective theory techniques to understand the perturbative S-matrix.

    Comments:
    Plenty of pages, 9 figures; v2: updated discussion of fusion terms in the one-loop soft theorem, added appendix with several explicit, worked examples of the application of the one-loop soft theorem
    Subjects:
    High Energy Physics — Theory (hep-th); High Energy Physics — Phenomenology (hep-ph); Nuclear Theory (nucl-th)
    arXiv:
    1412.3108 [pdf]
    JHEP(2015)·128 citations
  2. 04

    [Submitted on 11 Dec 2014] (cross-list from cond-mat.quant-gas)

    Numerical solution of the Boltzmann equation for trapped Fermi gases with in-medium effects

    Pierre-Alexandre Pantel🇫🇷 · Dany Davesne · Michael Urban🇫🇷

    Using the test-particle method, we solve numerically the Boltzmann equation for an ultra-cold gas of trapped fermions with realistic particle number and trap geometry in the normal phase. We include a mean-field potential and in-medium modifications of the cross-section obtained within a T matrix formalism. After some tests showing the reliability of our procedure, we apply the method to realistic cases of practical interest, namely the anisotropic expansion of the cloud and the radial quadrupole mode oscillation. Our results are in good agreement with experimental data. Although the in-medium effects significantly increase the collision rate, we find that they have only a moderate effect on the anisotropic expansion and on frequency and damping rate of the quadrupole mode.

    Comments:
    11 pages, v2: minor corrections
    Subjects:
    Quantum Gases (cond-mat.quant-gas); Nuclear Theory (nucl-th)
    arXiv:
    1412.3641 [pdf]
    PRA(2015)·17 citations

Affiliations

first authorsco-authorsvia INSPIRE