Esmaeilzadeh Pouriya, Zandi Ahmad, Ghazanfari Mohammad Hossein, Khezrnejad Ayub, Fatemi Mobeen, Molaei Dehkordi Asghar
Department of Chemical and Petroleum Engineering, Sharif University of Technology, Tehran 11155-9564, Iran.
Langmuir. 2022 Aug 2;38(30):9195-9209. doi: 10.1021/acs.langmuir.2c00909. Epub 2022 Jul 22.
The creation of surfaces with various super nonwetting properties is an ongoing challenge. We report diverse modifications of novel synthesized zirconia-ceria nanocomposites by different low surface energy agents to fabricate nanofluids capable of regulating surface wettability of mineral substrates to achieve selective superhydrophobic, superoleophobic-superhydrophilic, and superamphiphobic conditions. Surfaces treated with these nanofluids offer self-cleaning properties and effortless rolling-off behavior with sliding angles ≤7° for several liquids with surface tensions between 26 and 72.1 mN/m. The superamphiphobic nanofluid coating imparts nonstick properties to a solid surface whereby liquid drops can be effortlessly displaced on the coating with a near-zero tilt and conveniently lifted off using a needle tip, leaving no trace. Further, the superamphiphobic surface demonstrates good oil repellency toward ultralow surface tension liquids such as -hexane and -heptane. The superoleophobic-superhydrophilic surface repels oil droplets well regardless of whether it is in the air or underwater conditions. In addition, reaping the benefits of the ZrO-CeO nanocomposites' photocatalysis feature, the superoleophobic-superhydrophilic coating exhibits self-cleaning ability by the degradation of color dyes. Modification of the wettability of substrates is carried out by a cost-effective and facile solution-immersion approach, which creates surfaces with hierarchical nano-submicron-scaled structures. The multipurpose coated surfaces have outstanding durability and mechanical stability. They also resist well high-temperature-high-pressure conditions, which will provide various practical applications in different fields, including the condensate banking removal in gas reservoirs or the separation of oil/water mixtures.
创造具有各种超非润湿性的表面是一项持续存在的挑战。我们报告了通过不同的低表面能试剂对新型合成的氧化锆-氧化铈纳米复合材料进行的多种改性,以制备能够调节矿物基质表面润湿性的纳米流体,从而实现选择性超疏水、超疏油-超亲水和超两疏条件。用这些纳米流体处理过的表面具有自清洁性能,对于表面张力在26至72.1 mN/m之间的几种液体,其滑动角≤7°,具有轻松滚落的行为。超两疏纳米流体涂层赋予固体表面不粘性能,液滴可以以接近零的倾斜度轻松地在涂层上移动,并可以用针尖方便地提起,不留痕迹。此外,超两疏表面对超低表面张力液体如正己烷和正庚烷表现出良好的拒油性。超疏油-超亲水表面无论在空气还是水下条件下都能很好地排斥油滴。此外,得益于ZrO-CeO纳米复合材料的光催化特性,超疏油-超亲水涂层通过降解彩色染料表现出自清洁能力。通过一种经济高效且简便的溶液浸渍方法对基材的润湿性进行改性,该方法可创建具有分级纳米-亚微米尺度结构的表面。这种多功能涂层表面具有出色的耐久性和机械稳定性。它们还能很好地抵抗高温高压条件,这将在不同领域提供各种实际应用,包括气藏中的凝析油藏去除或油水混合物的分离。