Bîrleanu Emma, Mihăilă Ilarion, Topală Ionuț, Borcia Cătălin, Borcia Gabriela
Iasi Plasma Advanced Research Center (IPARC), Faculty of Physics, Alexandru Ioan Cuza University of Iasi, Blvd. Carol I No. 11, 700506 Iasi, Romania.
Integrated Center of Environmental Science Studies in the North-Eastern Development Region (CERNESIM), Alexandru Ioan Cuza University of Iasi, Blvd. Carol I No. 11, 700506 Iasi, Romania.
Polymers (Basel). 2023 May 25;15(11):2443. doi: 10.3390/polym15112443.
Atmospheric-pressure plasma (APP) has advantages for enhancing the adhesion of polymers and has to provide uniform, efficient treatment, which also limits the recovery effect of treated surfaces. This study investigates the effects of APP treatment on polymers that have no oxygen bonded in their structure and varying crystallinity, aiming to assess the maximum level of modification and the post-treatment stability of non-polar polymers based on their initial structure parameters, including the crystalline-amorphous structure. An APP reactor simulating continuous processing operating in air is employed, and the polymers are analyzed using contact angle measurement, XPS, AFM, and XRD. APP treatment significantly enhances the hydrophilic character of the polymers, with semicrystalline polymers exhibiting adhesion work values of approximately 105 mJ/m and 110 mJ/m for 0.5 s and 1.0 s exposure, respectively, while amorphous polymers reach approximately 128 mJ/m. The maximum average oxygen uptake is around 30%. Short treatment times induce the roughening of the semicrystalline polymer surfaces, while the amorphous polymer surfaces become smoother. The polymers exhibit a limit to their modification level, with 0.5 s exposure being optimal for significant surface property changes. The treated surfaces remain remarkably stable, with the contact angle only reverting by a few degrees toward that of the untreated state.
常压等离子体(APP)在增强聚合物附着力方面具有优势,且必须提供均匀、高效的处理,但这也限制了处理后表面的恢复效果。本研究调查了APP处理对结构中无氧键且结晶度不同的聚合物的影响,旨在根据包括结晶-非晶结构在内的初始结构参数,评估非极性聚合物的最大改性水平和处理后的稳定性。采用了一种模拟在空气中连续处理的APP反应器,并使用接触角测量、X射线光电子能谱(XPS)、原子力显微镜(AFM)和X射线衍射(XRD)对聚合物进行分析。APP处理显著增强了聚合物的亲水性,半结晶聚合物在暴露0.5秒和1.0秒时的粘附功值分别约为105 mJ/m²和110 mJ/m²,而非晶聚合物达到约128 mJ/m²。最大平均氧吸收量约为30%。短处理时间会导致半结晶聚合物表面粗糙化,而非晶聚合物表面变得更光滑。聚合物的改性水平存在限制,暴露0.5秒最有利于显著改变表面性能。处理后的表面保持非常稳定,接触角仅向未处理状态的接触角回退几度。