Hu Luyang, Wang Jingming, Wang Zhidan, Li Fabing, She Jing, Zhou Yufeng, Zhang Yumin, Liu Yin
School of Materials Science and Engineering, Anhui University of Science & Technology, Huainan, 232001, People's Republic of China.
Institute for Nano- and Microfluidics, Technische Universität (TU) Darmstadt, Darmstadt, D-64287, Germany.
Nanotechnology. 2022 Mar 25;33(24). doi: 10.1088/1361-6528/ac5ca7.
Smart surfaces with switchable wettability are widely studied for environmental application. Although a large number of stimulation routes provide broad prospects for the development of smart surfaces, achieving high sensitivity, fast response and recovery, simple operation, security and good stability is still challenging. Herein, a Janus membrane via electrospinning, chemical bath deposition and heat treatment is constructed. By using the hydrophilic ZIF-L nanosheet to functionalize the hydrophobic thermoplastic polyurethane (TPU) substrate, a smart surface utilizes the ZIF-L crack induced by strain in the hydrophilic layer to control surface wettability is obtained. In the range of 0%-100% strain, the wettability of the smart surface presents an obvious change with stretching, and water contact angle of the surface shows a monotonic increase with a maximum tuning range from 47° to 114°. Due to local fusion of the TPU microfibers and good binding between the ZIF-L layer and the TPU substrate after heat treatment, the prepared Janus membrane exhibits consistent and symmetrical hydrophilic-hydrophobic-hydrophilic transition curves in 50 stretching-releasing cycles. Thanks to the porous and asymmetric architecture, the membrane shows good oil-water separation performance, and the separation flux increases with the increase of strain, while the separation efficiency is always higher than 98%. Because of the excellent structural stability, the robust membrane with 100% strain maintains its oil-water separation property for 50 stretching-releasing cycles. This study provides a new perspective for the development of smart material with stimuli responsive surface for oily wastewater purification.
具有可切换润湿性的智能表面在环境应用中得到了广泛研究。尽管大量的刺激途径为智能表面的发展提供了广阔前景,但实现高灵敏度、快速响应和恢复、操作简单、安全性和良好稳定性仍然具有挑战性。在此,通过静电纺丝、化学浴沉积和热处理构建了一种Janus膜。通过使用亲水性ZIF-L纳米片对疏水性热塑性聚氨酯(TPU)基材进行功能化处理,获得了一种利用亲水性层中应变诱导的ZIF-L裂纹来控制表面润湿性的智能表面。在0%-100%应变范围内,智能表面的润湿性随拉伸呈现明显变化,表面水接触角随拉伸单调增加,最大调节范围为47°至114°。由于TPU微纤维的局部融合以及热处理后ZIF-L层与TPU基材之间的良好结合,制备的Janus膜在50次拉伸-释放循环中呈现出一致且对称的亲水-疏水-亲水转变曲线。得益于多孔和不对称结构,该膜表现出良好的油水分离性能,分离通量随应变增加而增加,而分离效率始终高于98%。由于具有优异的结构稳定性,100%应变的坚固膜在50次拉伸-释放循环中保持其油水分离性能。本研究为开发具有刺激响应表面的智能材料用于含油废水净化提供了新的视角。