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Superhydrophobic Durable Coating based on UV-Photoreactive Silica Nanoparticles

机译:基于UV光敏二氧化硅纳米粒子的超疏水耐用涂层

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Superhydrophobic surfaces with contact angle (CA) >150 and sliding angle (SA) <10 have been aroused curiosity over the years due to their various applications. Superhydrophobicity can be obtained tailoring the chemistry and the roughness of the surface, mimicking the Lotus flower. Most superhydrophobic surfaces based on secondary bonding lose their roughness in harsh conditions and are unsuitable for practical applications. Photoreactive SiO_2 nanoparticles (NPs) based on benzophenone (BP) can be a very effective tool for formation of reactive species that function as a molecular bridge by covalent bonding between the NP and any polymer matrix with C-C and C-H bonds. The present work focused on thermoset radiation curing urethane acrylate. Upon UV irradiation reactive excited nπ~* triplet benzophenone species are formed and react through hydrogen abstraction to form ketyl radicals which interact with a radicals from the UV irradiated polymer matrix to yield covalent bonding. Roughness was achieved by dipping the substrate in SiO_2@BPs NPs dispersion followed by irradiation. Fluoroalkylsilane was used to obtain hydrophobic top layer. AFM nano manipulation was used to verify the immobilization of NPs. Evaluation of durability was made using air flow at 300 km/hr. Preliminary results indicate the formation of super hydrophobic surfaces (CA>150 and SA<10) with improved stability.
机译:由于其各种应用,具有接触角(CA)> 150和滑动角度(SA)<10的超疏水性表面。可以获得超细侵害的化学和表面的粗糙度,模仿莲花。基于二级键合的大多数超疏水表面在恶劣的条件下失去了粗糙度,并且不适合实际应用。基于二苯甲酮(BP)的光反应性SiO_2纳米颗粒(NPS)可以是通过NP和任何聚合物基质与C-C和C-H键之间的共价键合而形成作为分子桥的反应性物质非常有效的工具。本作的工作聚焦在热固性辐射固化氨基甲酸酯丙烯酸酯。在UV照射反应激发时,通过氢抽取形成并反应Trioll磷酮物种以形成酮基团,以与来自UV照射的聚合物基质相互作用以产生共价键合。通过在SiO_2 @ BPS NPS分散中浸渍基材,然后照射来实现粗糙度。氟代烷基硅烷用于获得疏水性顶层。 AFM纳米操纵用于验证NPS的固定。使用300 km / hr的空气流量进行耐用性评估。初步结果表明,具有改善的稳定性的超疏水表面(CA> 150和SA <10)的形成。

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