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Updated: Jan 7, 2026

Phase Diagram Characterization Using Magnetic Beads as Liquid Carriers
Published on: September 4, 2015
Utilizing Interparticle Interaction for Magneto-Viscosity, -Wettability, and -Tribology Control in Liquid-Metal-Based
Jiajun Jiang1, Chao Xiang1, Shuaihang Pan2
1School of Mechanical Engineering, Xihua University, Chengdu, Sichuan 610039, China.
None:
Liquid-metal-based magnetic fluids (LMMFs) present a promising avenue for developing intelligent, magnetically responsive lubricants deployed under extreme conditions. However, fundamental understanding of their surface (e.g., wettability) and interface (e.g., viscosity and tribology) behavior remains elusive. Herein, we report a systematic study of a nanoengineered LMMF system comprising Fe3O4 and Mo nanoparticles in a Ga-In-Sn eutectic matrix and elucidate its magneto-viscosity, -wetting, and -tribological performance with these nanophases' contribution under magnetic fields. Our thermodynamic validation confirms active interactions at the Mo-Fe3O4 interface. With this interaction, we reveal LMMF's magneto-viscosity change by nanophase chain formation, provide a theoretical Gibbs free energy analysis, and innovatively link this knowledge to understand the magneto-wetting transition governed by this chain formation and interfacial pinning effects. More excitingly, magneto-tribological performance is also dominated by the competition between chain formation and nanoparticle motion under magnetic field and tribological loading. This investigation of magneto-viscosity, -wetting, -tribological performance, and their linkage implies a novel way to manipulate wetting and friction contact. The coupled understanding of magnetic, thermodynamic, interfacial, and tribological responses of LMMF enables predictable wetting and rubbing states and offers a promising field-controllable lubrication via critical noncontact magnetic manipulation in tribology applications.

