Zhang Liyun, Wen Xin, Ming Qingxia, Luo Xue, He Tianfeng, Chen Tian, Jiang Minghang, Wang Mengjun, Ma Lan
School of Science, Xihua University, Jinzhou Road, Chengdu, Sichuan 610039, P. R. China.
State Key Lab of Oil and Gas Reservoir Geology and Exploitation, Southwest Petroleum University, 8 Xindu Avenue, Chengdu, Sichuan 610500, P. R. China.
Langmuir. 2024 Mar 26;40(12):6550-6561. doi: 10.1021/acs.langmuir.4c00230. Epub 2024 Mar 14.
With environmental pollution becoming more serious, developing efficient treatment technologies for all kinds of organic wastewater has become the focus of current research. In this work, the coaxial electrospinning technology was used to one-step fabricate a porous and underwater superoleophobic polyacrylonitrile nanofibrous membrane with an Fe-based metal-organic framework (MIL-100(Fe)). Benefiting from the synergistic effect of two jets, the nanofibers are smaller and denser, which prompt the exposure of more nanomaterial additives (MIL-100(Fe)). The BET surface area increased to 202.888 m/g, and the membranes demonstrated outstanding underwater superoleophobicity. Moreover, compared with traditional blended matrix membranes by the single-axis method, separation of the modifier and membrane matrix material by coaxial methods also maintained excellent mechanical properties, which enhanced Young's modulus 3.4 times (∼1.34 MPa). As a result, facing soluble dyes, the porous C-PAN/MIL-100(Fe) membrane can demonstrate outstanding and fast adsorptive property (the of MB and CR reached 44.71 and 88.74 mg g, respectively). For oily emulsion, the hydrophilic and oleophobic nanofibrous reticular surface provided excellent separation performance (flux: 1124.0-1549.3 L m h, > 98%). Moreover, the porous and underwater superoleophobic C-PAN/MIL-100(Fe)-0.5 membrane can synchronously purify the dye/oil mixture emulsions by one-step filtration. Based on the above performance, we believe that the modified nanofibrous membrane prepared by one-step coaxial electrospinning technology can promote more studies of the development of membrane preparation technology in the field of oily wastewater treatment.
随着环境污染日益严重,开发针对各类有机废水的高效处理技术已成为当前研究的重点。在这项工作中,采用同轴静电纺丝技术一步制备了一种具有铁基金属有机框架(MIL-100(Fe))的多孔且水下超疏油聚丙烯腈纳米纤维膜。受益于两股射流的协同作用,纳米纤维更小且更致密,这促使更多的纳米材料添加剂(MIL-100(Fe))得以暴露。BET表面积增加到202.888 m²/g,且该膜表现出优异的水下超疏油性。此外,与通过单轴法制备的传统共混基质膜相比,通过同轴法分离改性剂和膜基质材料还保持了优异的机械性能,使杨氏模量提高了3.4倍(约1.34 MPa)。结果,面对可溶性染料时,多孔C-PAN/MIL-100(Fe)膜能表现出出色且快速的吸附性能(亚甲基蓝和罗丹明B的吸附量分别达到44.71和88.74 mg/g)。对于含油乳液,亲水性和疏油性的纳米纤维网状表面提供了优异的分离性能(通量:1124.0 - 1549.3 L·m⁻²·h⁻¹,截留率>98%)。此外,多孔且水下超疏油的C-PAN/MIL-100(Fe)-0.5膜可通过一步过滤同步净化染料/油混合乳液。基于上述性能,我们认为通过一步同轴静电纺丝技术制备的改性纳米纤维膜能够推动更多关于含油废水处理领域膜制备技术发展的研究。