Issue 5, 2023

Positional ordering induced by dynamic steric interactions in superparamagnetic rods

Abstract

The dynamic motion produced by precessing magnetic fields can drive matter into far-from-equilibrium states. We predict 1D periodic ordering in systems of precessing rods when magnetic interactions between rods remain insignificant. The precession angle of the rods is completely determined by the field's precession angle and the ratio of the field's precession frequency and the characteristic response frequency of the rods. We develop a molecular dynamics model that explicitly calculates magnetic interactions between particles, and we also simulate rods in the limit of a strong and fast precessing magnetic field where inter-rod magnetic interactions are negligible, using a purely steric model. Our simulations show how steric interactions drive the rods from a positionally disordered phase (nematic) to a layered (smectic) phase. As the rod precession angle increases, the nematic–smectic transition density significantly decreases. The minimization of unfavorable steric interactions also induces phase separation in binary mixtures of rods of different lengths. This effect is general to any force that produces precession in elongated particles. This work will advance the understanding and control of out-of-equilibrium soft matter systems.

Graphical abstract: Positional ordering induced by dynamic steric interactions in superparamagnetic rods

Article information

Article type
Paper
Submitted
20 Nov 2022
Accepted
06 Jan 2023
First published
12 Jan 2023

Soft Matter, 2023,19, 851-857

Author version available

Positional ordering induced by dynamic steric interactions in superparamagnetic rods

C. A. Brisbois and M. Olvera de la Cruz, Soft Matter, 2023, 19, 851 DOI: 10.1039/D2SM01519F

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