Popis: |
Biased quorum-sensing active particles (bQSAPs) are shown to extend notions of dynamic critical phenomena beyond active phase separation into the prototypical nonequilibrium setting of driven transport, where characteristic emergent behaviour is not stationary. To do so, we construct an effective field theory in a single order-parameter -- a non-stationary analogue of active Model B -- which accounts for the fact that different aspects of bQSAPs can only be cast in terms of passive thermodynamics under an appropriate choice of inertial frame. This codifies the movement of phase boundaries due to nonequilibrium fluxes between coexisting bulk phases in terms of a difference in effective chemical potentials and therefore an unequal tangent construction on a bulk free energy density. The result is an anomalous phase structure; binodals are permitted to cross spinodal lines so that criticality is no longer constrained to a single point. Instead, criticality -- with exponents that are seemingly unchanged from symmetric QSAPs -- is shown to exist along a line that marks the entry to an otherwise forbidden region of phase space. The interior of this region is not critical in the conventional sense but retains certain features of criticality, which we term pseudo-critical. Since a Ginzburg criterion cannot be satisfied, fluctuations cannot be ignored, no matter how small, and manifest at the scale of macroscopic features. However, finite-wavenumber fluctuations grow at non-vanishing rates and are characterized by non-trivial dispersion relations. The resulting interplay is used to explain how different areas of phase space correspond to different types of micro- and meso-phase separation. |