Department of Chemical and Biomolecular Engineering, North Carolina State University, Raleigh, North Carolina 27695, USA.
Langmuir. 2010 Feb 16;26(4):2550-8. doi: 10.1021/la902830d.
Atomic layer deposition (ALD) of aluminum oxide on nonwoven polypropylene and woven cotton fabric materials can be used to transform and control fiber surface wetting properties. Infrared analysis shows that ALD can produce a uniform coating throughout the nonwoven polypropylene fiber matrix, and the amount of coating can be controlled by the number of ALD cycles. Upon coating by ALD aluminum oxide, nonwetting hydrophobic polypropylene fibers transition to either a metastable hydrophobic or a fully wetting hydrophilic state, consistent with well-known Cassie-Baxter and Wenzel models of surface wetting of roughened surfaces. The observed nonwetting/wetting transition depends on ALD process variables such as the number of ALD coating cycles and deposition temperature. Cotton fabrics coated with ALD aluminum oxide at moderate temperatures were also observed to transition from a natural wetting state to a metastable hydrophobic state and back to wetting depending on the number of ALD cycles. The transitions on cotton appear to be less sensitive to deposition temperature. The results provide insight into the effect of ALD film growth mechanisms on hydrophobic and hydrophilic polymers and fibrous structures. The ability to adjust and control surface energy, surface reactivity, and wettability of polymer and natural fiber systems using atomic layer deposition may enable a wide range of new applications for functional fiber-based systems.
原子层沉积(ALD)氧化铝在无纺聚丙烯和机织棉织物材料上的应用可以用来改变和控制纤维表面润湿性。红外分析表明,ALD 可以在无纺聚丙烯纤维基质中产生均匀的涂层,并且涂层的量可以通过 ALD 循环的次数来控制。经过 ALD 氧化铝涂层处理后,不润湿的疏水聚丙烯纤维转变为亚稳疏水或完全润湿亲水状态,这与众所周知的粗糙表面的 Cassie-Baxter 和 Wenzel 表面润湿模型一致。观察到的不润湿/润湿转变取决于 ALD 工艺参数,如 ALD 涂层循环次数和沉积温度。在中等温度下用 ALD 氧化铝涂覆的棉织物也被观察到从自然润湿状态转变为亚稳疏水状态,然后根据 ALD 循环次数再次润湿。在棉织物上的转变似乎对沉积温度的敏感性较低。研究结果深入了解了 ALD 薄膜生长机制对疏水性和亲水性聚合物和纤维结构的影响。使用原子层沉积来调节和控制聚合物和天然纤维系统的表面能、表面反应性和润湿性的能力,可能为功能性纤维基系统的广泛新应用开辟道路。