Vanishing of configurational entropy may not imply an ideal glass transition in randomly pinned liquids
arXiv:1509.03433 · doi:10.1073/pnas.1512745112
Abstract
Ozawa et. al [1] presented numerical results for the configurational entropy density, , of a model glass-forming liquid in the presence of random pinning. The location of a "phase boundary" in the pin density () - temperature () plane, that separates an "ideal glass" phase from the supercooled liquid phase, is obtained by finding the points at which . According to the theoretical arguments by Cammarota et. al. [2], an ideal glass transition at which the -relaxation time diverges takes place when goes to zero. We have studied the dynamics of the same system using molecular dynamics simulations. We have calculated the time-dependence of the self intermediate scattering function, at three state points in the plane where according to Ref. [1]. It is clear from the plots that the relaxation time is finite [ at these state points. Similar conclusions have been obtained in Ref.[3] where an overlap function was used to calculate at these state points.
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