聚丙烯酰胺凝胶界面附近的纳米粒子动力学。

IF 6.9 Q1 POLYMER SCIENCE
ACS polymers Au Pub Date : 2025-03-28 eCollection Date: 2025-06-11 DOI:10.1021/acspolymersau.4c00099
Brittany K Roopnarine, Adediwura Deborah Adedeji, Sujata Dhakal, Sneha Suresh, Svetlana Morozova
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引用次数: 0

摘要

为了确定界面材料性质对水动力相互作用和输运的影响,我们研究了“软”凝胶表面如何影响聚苯乙烯纳米颗粒在凸透镜诱导约束(CLiC)中去离子水中的局部扩散。凝胶涂层是通过将聚丙烯酰胺聚合到玻璃表面而产生的,从而产生高度为30-100纳米的60、1300、2620和8400 Pa的不同模量的表面。我们分析扩散使用差分动态显微镜(DDM)作为接近表面的函数。我们发现扩散取决于表面的材料性质。凝胶层太薄,无法影响表面上的流体动力学相互作用,反映了接触角的测量结果。然而,在更柔软、更水合的层附近,纳米颗粒可以渗透到凝胶表面或在凝胶表面之间。随着模量的增加,进入凝胶的分割率降低,我们观察到颗粒进入凝胶的吸收,但在凝胶层中没有明显的运动。在实验范围内,表面涂层高度的函数没有观察到额外的影响。我们假设这些发现有助于理解复杂界面下的聚合物动力学,并可能导致对生物污垢和聚合物基分离的革命性理解。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Nanoparticle Dynamics near Polyacrylamide Gel Interfaces.

To determine the impact of the interface material properties on hydrodynamic interactions and transport, we have investigated how "soft" gel surfaces influence the local diffusion of polystyrene nanoparticles in deionized water in convex lens-induced confinement (CLiC). The gel coatings are created by polymerizing polyacrylamide onto glass surfaces, resulting in surfaces with varying moduli of 60, 1300, 2620, and 8400 Pa that are 30-100 nm in height. We analyze the diffusion using differential dynamic microscopy (DDM) as a function of proximity to the surface. We find that diffusion depends on the material properties of the surface. The gel layers are too thin to impact the hydrodynamic interactions experienced on the surface, mirroring the contact angle measurements. However, near softer, more hydrated layers, the nanoparticles can permeate into or between the gel surfaces. As the modulus increases, the partition into the gel is lower, and we observe absorption of the particles into the gel, but no discernible motion in the gel layers. No additional effects are observed as a function of the height of the surface coatings within the experimental range. We postulate that these findings contribute to understanding polymer dynamics at complex interfaces and can potentially lead to a transformative understanding of biofouling and polymer-based separations.

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CiteScore
2.50
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