Active XY model on a substrate: Density fluctuations and phase ordering
Astik Haldar, Apurba Sarkar, Swarnajit Chatterjee, and Abhik Basu

TL;DR
This study investigates an active XY model on a substrate, revealing novel scaling behaviors and phase ordering phenomena driven by the interplay of activity, density fluctuations, and conservation laws, supported by simulations and hydrodynamic theory.
Contribution
It introduces a new active XY model with conservation laws, demonstrating unique phase ordering and fluctuation scaling not observed in previous models.
Findings
Demonstrates phase synchronization without hydrodynamic interactions.
Identifies novel scaling behavior with parameter-dependent exponents.
Finds stable and unstable phases with distinct fluctuation characteristics.
Abstract
We explore the generic long wavelength properties of an active XY model on a substrate, consisting of collection of nearly phase-ordered active XY spins in contact with a diffusing, conserved species, as a representative system of active spinners with a conservation law. The spins rotate actively in response to the local density fluctuations and local phase differences, on a solid substrate. We investigate this system by Monte-Carlo simulations of an agent-based model, which we set up, complemented by the hydrodynamic theory for the system. We demonstrate that this system can phase-synchronize without any hydrodynamic interactions. Our combined numerical and analytical studies show that this model, when stable, displays hitherto unstudied scaling behavior: As a consequence of the interplay between the mobility, active rotation and number conservation, such a system can be stable over a…
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Taxonomy
TopicsTheoretical and Computational Physics · Micro and Nano Robotics · Nonlinear Dynamics and Pattern Formation
