Wetting and Pattern Formation in Non-Reciprocal Ternary Phase Separation
Abstract
Non-reciprocal interactions are among the simplest mechanisms that drive a physical system out of thermal equilibrium, leading to novel phenomena such as oscillatory pattern formation. In this paper, we introduce a ternary phase separation model, with non-reciprocal interactions between two of the three phases and a spectator phase that mimics a boundary. Through numerical simulations, we uncover three distinct phase behaviours: a quasi-static regime, characterized by well-defined non-equilibrium contact angles at the three phase contact line; a limit cycle regime, with the three bulk phases rotating around the three phase contact line; and a travelling wave regime, featuring persistent directional motion. We complement our numerical findings with analytical examination of linear stability and the wave propagation speed near equilibrium. Our model provides a minimal framework for extending classical equilibrium wetting theory to active and non-equilibrium systems.
Cite
@article{arxiv.2506.18702,
title = {Wetting and Pattern Formation in Non-Reciprocal Ternary Phase Separation},
author = {Xiao Ma and Michael E. Cates},
journal= {arXiv preprint arXiv:2506.18702},
year = {2025}
}
Comments
Accepted for publication in New Journal of Physics