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Updated: Sep 23, 2026

Methods of Ex Situ and In Situ Investigations of Structural Transformations: The Case of Crystallization of Metallic Glasses
Published on: June 7, 2018
Critical scaling and supercritical coarsening in active model B
Abir Bhowmick1, P K Mohanty1,2
1Indian Institute of Science Education and Research Kolkata, Department of Physical Sciences, Mohanpur 741246, India.
Abstract:
We study critical dynamics and phase-ordering kinetics in active model B (AMB) and its minimal extension, active model B+ (AMB+), using deterministic simulations in two dimensions. At criticality r_{c}=0, both models display identical mean-field scaling despite nonequilibrium currents, with order-parameter decay with time as m(t)∼t^{-α}, with α=1/4, and the dynamical exponent being z=4. A generalized equal-area construction yields the binodal densities and phase diagram of AMB+. For supercritical quenches, domain size grows as L(t)∼t^{1/3}(1+c/lnt), revealing logarithmic corrections to the classic t^{1/3} growth law; moreover, it is consistent with the functional renormalization group predictions for marginal activity in d=2. The logarithmic corrections are clearly evident in both AMB and AMB+ in the macrophase-separated regime. However, in AMB+, domain growth is arrested in the parameter regime where the active current opposes the formation of macroscopic clusters, leading to long-lived microphase-separated states.
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