4.8 Article

Fluctuations and Criticality of a Granular Solid-Liquid-Like Phase Transition

Journal

PHYSICAL REVIEW LETTERS
Volume 109, Issue 9, Pages -

Publisher

AMER PHYSICAL SOC
DOI: 10.1103/PhysRevLett.109.095701

Keywords

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Funding

  1. Fondecyt [1090188, 1100100]
  2. Anillo Grant [ACT 127]

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We present an experimental study of density and order fluctuations in the vicinity of the solid-liquidlike transition that occurs in a vibrated quasi-two-dimensional granular system. The two-dimensional projected static and dynamic correlation functions are studied. We show that density fluctuations, characterized through the structure factor, increase in size and intensity as the transition is approached, but they do not change significantly at the transition itself. The dense, metastable clusters, which present square symmetry, also increase their local order in the vicinity of the transition. This is characterized through the bond-orientational order parameter Q(4), which in Fourier space shows an Ornstein-Zernikelike behavior. Depending on the filling density and vertical height, the transition can be of first- or second-order type. In the latter case, the associated correlation length xi(4), the relaxation time tau(4), the zero k limit of Q(4) fluctuations (static susceptibility), the pair correlation function of Q(4), and the amplitude of the order parameter obey critical power laws, with saturations due to finite size effects. Their respective critical exponents are nu(perpendicular to)= nu(parallel to) = 2, gamma = 1, eta = 0.67, and beta = 1/2, whereas the dynamical critical exponent z = nu(parallel to) (/nu perpendicular to) = 2. These results are consistent with model C of dynamical critical phenomena, valid for a nonconserved critical order parameter (bond-orientation order) coupled to a conserved field (density).

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