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April 29, 2026Colloids and Surfaces A Physicochemical and Engineering Aspects1 citationsOpen Access

Magnetization orientation controls equilibrium structures and aggregation kinetics of charged cubic hematite particles in a quasi-two-dimensional system: Monte Carlo and Brownian dynamics simulations

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KOKazuya OkadaHUHaq Siraj Ul

Key Points

  • This research examines how magnetization orientation affects equilibrium structures and aggregation kinetics of charged cubic hematite particles.
  • Monte Carlo simulations characterize equilibrium aggregates of particles.
  • Brownian dynamics simulations track aggregation kinetics from dispersed states.
  • Magnetization angle varies to quantify its influence on particle aggregation.
  • Magnetization angle leads to diverse aggregate structures in simulations.
  • Early-stage stable cluster units accelerate aggregation while unstable ones slow it down.
  • A small tilt near the body-diagonal direction significantly alters aggregation modes.

Abstract

Magnetic particle dispersions exhibit field-responsive aggregation and structural transitions that depend sensitively on the particle shape, magnetic configuration, and near-surface confinement, with cubic particles showing diverse contact modes. In this study, the influence of the magnetization angle of a rigidly fixed magnetic moment at the centre of charged cubic hematite particles on equilibrium structures and aggregation kinetics in a quasi-two-dimensional system is examined. Three representative orientations, namely face-normal, edge, and body-diagonal, are considered, and the magnetization direction is varied continuously to quantify the angular sensitivity. Monte Carlo simulations characterise equilibrium aggregates, while Brownian dynamics simulations track aggregation from dispersed states. Particle centres are confined to a plane, whereas rotations remain three-dimensional. Equilibrium structures depend strongly on the magnetization orientation, with face-normal alignment favouring chain-like aggregates and edge and body-diagonal orientations producing compact clusters with frequent face-to-face contact. Aggregation kinetics are controlled by the stability of small cluster units, as stable early-stage units accelerate aggregation while unstable units slow growth. A pronounced shift in the dominant aggregation mode occurs within a narrow angular range near the body-diagonal direction, between 15° and 20°, suggesting that small angular deviations can markedly alter both aggregate structures and formation pathways. Under an applied electric field, particles accumulate near the positively charged wall for all orientations, with model-dependent differences in the near-wall microstructure evident at low field strengths and reduced at higher field strengths. These findings provide a concise reference map of aggregation behaviour as a function of magnetization angle. • Charged cubic hematite particles are studied in quasi-2D via MC and BD simulations. • MC simulations show that magnetisation angle produces diverse aggregate structures. • BD simulations show that magnetisation angle controls aggregation kinetics. • A small tilt near the body-diagonal direction switches the aggregation mode. • Under an electric field, near-wall layering depends on the magnetisation model.

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Cite This Study

Okada et al. (2026) studied this question.

synapsesocial.com/papers/69f1547f879cb923c4944bechttps://doi.org/10.1016/j.colsurfa.2026.140645
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