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用于重力驱动油水分离的原位聚合超疏水超亲油纳米纤维膜。

In situ polymerized superhydrophobic and superoleophilic nanofibrous membranes for gravity driven oil-water separation.

机构信息

College of Textiles, Donghua University, Shanghai 201620, China.

出版信息

Nanoscale. 2013 Dec 7;5(23):11657-64. doi: 10.1039/c3nr03937d.

Abstract

Creating an efficient, cost-effective method that can provide simple, practical and high-throughput separation of oil-water mixtures has proved extremely challenging. This work responds to these challenges by designing, fabricating and evaluating a novel fluorinated polybenzoxazine (F-PBZ) modified nanofibrous membrane optimized to achieve gravity driven oil-water separation. The membrane design is then realized by a facile combination of electrospun poly(m-phenylene isophthalamide) (PMIA) nanofibers and an in situ polymerized F-PBZ functional layer incorporating SiO2 nanoparticles (SiO2 NPs). By employing the F-PBZ/SiO2 NP modification, the pristine hydrophilic PMIA nanofibrous membranes are endowed with promising superhydrophobicity with a water contact angle of 161° and superoleophilicity with an oil contact angle of 0°. This new membrane shows high thermal stability (350 °C) and good repellency to hot water (80 °C), and achieves an excellent mechanical strength of 40.8 MPa. Furthermore, the as-prepared membranes exhibited fast and efficient separation of oil-water mixtures by a solely gravity driven process, which makes them good candidates for industrial oil-polluted water treatments and oil spill cleanup, and also provided new insights into the design and development of functional nanofibrous membranes through F-PBZ modification.

摘要

开发一种高效、经济且能够简单、实用、高通量分离油水混合物的方法极具挑战性。本工作通过设计、制备和评估一种新型氟化聚苯并恶嗪(F-PBZ)修饰的纳米纤维膜来应对这些挑战,该膜经优化后可实现重力驱动的油水分离。然后,通过简便地结合静电纺丝聚间苯二甲酰间苯二胺(PMIA)纳米纤维和原位聚合的含二氧化硅纳米颗粒(SiO2 NPs)的 F-PBZ 功能层来实现膜设计。通过采用 F-PBZ/SiO2 NP 修饰,使原始亲水性 PMIA 纳米纤维膜具有良好的超疏水性,水接触角为 161°,超亲油性,油接触角为 0°。这种新膜具有较高的热稳定性(350°C)和良好的耐热水性(80°C),机械强度高达 40.8 MPa。此外,所制备的膜仅通过重力驱动过程即可快速有效地分离油水混合物,这使其成为工业含油污水治理和溢油清理的理想选择,也为通过 F-PBZ 修饰设计和开发功能性纳米纤维膜提供了新的思路。

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