PulseExploreJournal ClubDebatesTrendingResearchersJournals
Instagram
HomeExploreJournal ClubTrending
Synapse
⌘+K
Synapse
May 2, 20260 citations

Magnetic-Field-Assisted Plasma Treatment for Enhanced Wettability of Fluorosilicone Acrylate.

View Full Paper
PXPan XuAutodesk (United States)HDHaishun DengAnhui University of Science and TechnologyZHZhixiang HuangMinistry of Education of the People's Republic of China

Key Points

  • This research aims to enhance the wettability of fluorosilicone acrylate lenses through a magnetic-field-assisted plasma treatment.
  • Proposed and tested a magnetic-field-assisted plasma strategy for surface treatment.
  • Analyzed surface properties using techniques assessing active species concentration and water contact angle.
  • Compared effects of magnetic-field-assisted treatment to conventional plasma treatment.
  • Achieved a 142.9% enhancement of active species concentration at 391.4 nm.
  • Reduced water contact angle to 7.67°, indicating improved hydrophilicity.
  • Surface roughness increased by 68.2% under magnetic assistance compared to 35.9% with conventional treatment.

Abstract

Conventional plasma techniques face challenges in achieving efficient and uniform surface modification of fluorosilicone acrylate orthokeratology lenses, primarily due to insufficient generation of active species and poorly controlled surface reactions. In this study, a magnetic-field-assisted plasma strategy is proposed to significantly enhance the surface hydrophilicity of these lenses. Compared with conventional plasma treatment, the magnetic-field-assisted process increased the concentration of active species, as evidenced by a 142.9% enhancement at the 391.4 nm spectral line, and reduced the water contact angle to an ultralow value of 7.67° in an air-plasma medium. Surface analysis indicated a decrease in C 1s and F 1s content, along with an increase in polar oxygen-containing functional groups (C-O, Si-OH, -OH), while surface roughness increased by 68.2% under magnetic assistance compared to 35.9% with conventional treatment. The improvement is attributed to the magnetic field promoting directional ion transport, suppressing random scission of Si-O-Si bonds, and facilitating the of a stable, ordered Si-O network. Moreover, magnetic confinement enhances the effective electron collision probability and the mean electron energy in the discharge, leading to more uniform and controllable surface modification with reduced substrate damage. This approach demonstrates considerable potential for optimizing the surface properties of fluorosilicone acrylate and other biomedical materials.

Ask AI
Helpful
Bookmark
Share
View Full Paper

Cite This Study

Xu et al. (2026) studied this question.

synapsesocial.com/papers/69f5945c71405d493afff22fhttps://doi.org/10.1021/acs.langmuir.6c00826
Ask AI
Helpful
Bookmark
Share
View Full Paper

Also Consider

Synapse has enriched 5 closely related papers on similar clinical questions. Consider them for comparative context:

  1. 1Comparing investigation of pattern formation in glow and streamer DBD2016 · 11 citations
  2. 2Enhancement of optical signal and characterization of palladium plasma by magnetic field-assisted laser-induced breakdown spectroscopy2020 · 20 citations
  3. 3Surface Modification of Stainless Steel Using an Atmospheric Pressure Plasma Arc Driven by an External Transverse- Alternating Magnetic Field2015 · 2 citations
  4. 4Degradation of trimethoprim in aqueous by persulfate activated with nanosecond pulsed gas-liquid discharge plasma2020 · 64 citations
  5. 5TPU with outstanding wettability and hydrophilic stability is obtained by plasma-induced graft polymerization2024 · 23 citations