arXiv · 2604.19912
A Statistical-Mechanical Model for Dipolar Chain Formation
Abstract
Dipolar fluids are known to exhibit complex self-assembly at low temperatures, yet a compact thermodynamic description of their aggregate statistics has remained elusive. Using molecular dynamics simulations of Stockmayer particles with a purely repulsive WCA core, we confirm that over broad regions of the ($\rho$, $T$) phase space the chain-size distribution follows an exponential decay with characteristic size $s_0$. Within this regime, we find that $s_0$ can be accurately described by an effective free energy $\phi$ that incorporates translational entropy, bonding energy, and a crowding penalty. Identifying deviations from this ideal scaling provides a further division of the phase space into four regions. Therefore, our results locate a regime of relatively simple chain statistics and offer an alternative regime-based perspective on dipolar self-assembly.
Explore related subjects
Keep this discovery
Explore connections, maps & timelines
Zhongqi Liang, Jesús Peréz-Ríos. 2026-04-21. A Statistical-Mechanical Model for Dipolar Chain Formation. https://arxiv.org/abs/2604.19912
Cite the original work for its findings. Save a collection to share your selection of sources.