Gaxiola-López Julio C, Lara-Ceniceros Tania E, Silva-Vidaurri Luis Gerardo, Advincula Rigoberto C, Bonilla-Cruz José
Advanced Functional Materials & Nanotechnology Group, Av. Alianza Norte 202, Autopista Monterrey-Aeropuerto Km 10, PIIT, C.P. 66628 Apodaca, Nuevo León, Mexico.
Nano & Micro Additive Manufacturing of Polymers and Composite Materials Laboratory "3D LAB", Av. Alianza Norte 202, Autopista Monterrey-Aeropuerto Km 10, PIIT, C.P. 66628 Apodaca, Nuevo León, Mexico.
Langmuir. 2022 Jun 28;38(25):7740-7749. doi: 10.1021/acs.langmuir.2c00788. Epub 2022 Jun 10.
Parahydrophobic surfaces (PHSs) composed of arrays of cubic μ-pillars with a double scale of roughness and variable wettability were systematically obtained in one step and a widely accessible stereolithographic Formlabs 3D printer. The wettability control was achieved by combining the geometrical parameters ( = height and = pitch) and the surface modification with fluoroalkyl silane compounds. Homogeneous distribution of F and Si atoms onto the pillars was observed by XPS and SEM-EDAX. A nano-roughness on the heads of the pillars was achieved without any post-treatment. The smallest values lead to surfaces with static contact angles (CAs) >150° regardless of the utilized. Interestingly, the relationship 0.6 ≤ / ≤ 2.6 obtained here was in good agreement with the / values reported for nano- and submicron pillars. Furthermore, experimental CAs, advancing and receding CAs, were consistent with the theoretical prediction from the Cassie-Baxter model. Structures covered with perfluorodecyltriethoxysilane with high and short lead to PHSs. Conversely, structures covered with perfluorodecyltrimethoxysilane exhibited a superhydrophobic behavior. Finally, several aqueous reactions, such as precipitation, coordination complex, and nanoparticle synthesis, were carried out by placing the reactive agents as microdroplets on the parahydrophobic pillars, demonstrating the potential application as chemical multi-reaction array platforms for a large variety of relevant fields in microdroplet manipulation, microfluidics systems, and health monitoring, among others.
通过一步法在广泛使用的立体光刻Formlabs 3D打印机中系统地制备了由具有双尺度粗糙度和可变润湿性的立方微柱阵列组成的准疏水表面(PHS)。通过结合几何参数(高度h和间距p)以及用氟代烷基硅烷化合物进行表面改性来实现润湿性控制。通过XPS和SEM-EDAX观察到F和Si原子在柱上的均匀分布。无需任何后处理即可在柱头上实现纳米粗糙度。无论使用何种p值,最小的h值都会导致表面的静态接触角(CA)>150°。有趣的是,此处获得的0.6≤h/p≤2.6的关系与报道的纳米和亚微米柱的h/p值非常吻合。此外,实验测得的CA、前进接触角和后退接触角与Cassie-Baxter模型的理论预测一致。用高h和短p的全氟癸基三乙氧基硅烷覆盖的结构会形成PHS。相反,用全氟癸基三甲氧基硅烷覆盖的结构表现出超疏水行为。最后,通过将反应剂以微滴的形式放置在准疏水柱上进行了几种水相反应,如沉淀、配位络合和纳米颗粒合成,证明了其作为化学多反应阵列平台在微滴操纵、微流控系统和健康监测等各种相关领域的潜在应用。