Related Experiment Video
Updated: Jul 6, 2026

Encapsulation and Permeability Characteristics of Plasma Polymerized Hollow Particles
Published on: August 16, 2012
Synergistic Enhancement of Magnetorheological Fluid Sedimentation Stability via Plasma Surface Engineering and
Changkuan Zheng1, Yongqing Li1, Xiaolei Zheng1
1Institute of Materials Science and Engineering, Beijing University of Technology, Beijing 100124, PR China.
Abstract:
Poor sedimentation stability remains a critical bottleneck hindering the widespread application of magnetorheological fluids (MRFs). To address this challenge, we propose a synergistic strategy that combines plasma surface engineering with micro-nano dual-dispersed particles to simultaneously tailor interfacial properties and suspension microstructure. Graphite-coated Fe/FeN core-shell magnetic nanoparticles (Fe/FeN@G) were synthesized through the pyrolysis of ferrocene in high-temperature plasma and subsequently fluorinated in a low-temperature CF4 plasma to obtain Fe/FeN@PFG. Unlike previous studies that individually employed plasma-treated carbonyl iron particles or bidisperse micro-nano systems, the present work integrates fluorinated Fe/FeN@PFG nanoparticles as a nanosized secondary phase with micron-sized carbonyl iron (CI) at a fixed solid loading of 50 wt % without additional stabilizing additives, thereby constructing an additive-free, plasma-engineered bidisperse MRF. Plasma fluorination introduces a fluorine-containing organic layer (C-F/C-F2 bonds), reduces the contact angle with silicone oil from 65.7° to 40.3°, and promotes the formation of a shear-sensitive three-dimensional thixotropic network. The resulting Fe/FeN@PFG-CI MRF exhibits a high zero-field viscosity of 73.2 Pa·s at 0.01 s-1, providing structural antisedimentation support, while maintaining a low viscosity of 0.111 Pa·s at 1000 s-1 to ensure good flowability. Despite the enhanced off-state viscosity and elasticity, the system retains reversible magnetorheological responses and fast thixotropic recovery. Sedimentation stability is markedly improved, as reflected by a turbiscan stability index of only 0.51 after 5.3 h and a sedimentation ratio of 85% after 72 h. These findings demonstrate that coupling core-shell nanoparticle design with CF4 plasma fluorination offers a cost-effective and scalable route to high-stability, high-performance MRFs that complement and extend existing stabilization strategies.
More Related Videos
Related Concept Videos
Colloidal precipitates
Coagulation

