Division of Sustainable Development, College of Science and Engineering, Hamad Bin Khalifa University, Education City, P.O. Box 5825, Doha, Qatar.
Qatar Environment and Energy Research Institute, Hamad Bin Khalifa University, Qatar Foundation, P.O. Box 5825, Doha, Qatar.
Environ Sci Pollut Res Int. 2020 May;27(13):15488-15497. doi: 10.1007/s11356-020-08021-x. Epub 2020 Feb 19.
Although it is still a great challenge, developing oil-/water-separating membranes that combine the advantages of high separation efficiency, salty environments tolerance, and fouling resistance are highly demanded for marine oil spill cleanups and oil-/gas-produced water treatment. Here, we report a new type of all-inorganic nanostructured membrane, which is composed of titanate nanofibers and SiO particulate gel for efficient and stable oil/saltwater separation. The nanoporous and interconnected network structure constructed with titanate nanofibers is the key to ensure the high separation efficiency and high water flux of the new membrane. The SiO gel is used as a binder to offer mechanical flexibility and integrity for this type of all-inorganic membrane. The new membrane displays a high oil/water separation efficiency of above 99.5% with oil content in treated effluent lower than US environmental discharge standards (42 ppm) and high water permeation flux of 1600 LMH/bar under low operation pressure. The new membrane also demonstrates outstanding durability in the environment of different salinities, and it has a good resistance for oil fouling due to its excellent underwater superoleophobicity with an oil contact angle above 150 °. Most importantly, the underwater superoleophobic properties can be well maintained after being repeatedly reused. The excellent environmental durability, oil-fouling resistance, high separation efficiency, and facile fabrication process for this new type of membrane render great potential for industrial application in treating produced water.
尽管这仍然是一个巨大的挑战,但开发出兼具高分离效率、耐盐环境和抗污染能力的油水分离膜,对于海洋溢油清理和油/气生产水处理来说是非常需要的。在这里,我们报告了一种新型的全无机纳米结构膜,它由钛酸盐纳米纤维和 SiO 颗粒凝胶组成,用于高效稳定的油水分离。由钛酸盐纳米纤维构建的纳米多孔和相互连接的网络结构是确保新型膜具有高分离效率和高水通量的关键。SiO 凝胶用作粘结剂,为这种全无机膜提供机械柔韧性和完整性。新型膜在操作压力低的情况下,表现出高于 99.5%的高油水分离效率,处理后废水中的含油量低于美国环境排放标准(42ppm),水渗透通量高达 1600LMH/bar。新型膜在不同盐度环境下也表现出出色的耐用性,由于其水下超疏油性,具有超过 150°的油接触角,因此具有良好的抗油污能力。最重要的是,这种水下超疏油特性在反复重复使用后仍能很好地保持。这种新型膜具有出色的环境耐久性、抗油污能力、高分离效率和简单的制造工艺,为处理生产用水的工业应用提供了巨大的潜力。