Min Li , Nan Shang , Qi Liu , Jinheng Lei , Xun Zhou , Peiqing Zhang , Noreddine Ghaffour , Quan Feng , Zhenyu Li
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引用次数: 0
Abstract
Freshwater scarcity has gradually become a serious global water crisis that needs to be solved urgently. Membrane distillation (MD) has been regarded as a promising desalination technology due to its merits compared with other desalination technologies, including high rejection of non-volatile components and superior feed water salinity tolerance. However, the conventional MD faces several challenges, including thermal loss and membrane scaling. Here, we develop a natural products-based Janus sodium alginate/melanin nanoparticles-composited polyvinylidene fluoride membrane (SA-M-PVDF membrane) with outstanding photothermal effect and high hydrophilicity, which can allow the SA-M-PVDF membrane to present excellent photothermal membrane distillation (PMD) performance and scaling-resistance property respectively, thus can solve the hard problems of thermal loss and frequent membrane scaling. Moreover, owing to the biomaterial characters of melanin nanoparticles and SA, the synthesis of SA-M-PVDF membrane circumvents risk of secondary pollution to product water. As expected, the SA-M-PVDF membrane showed excellent PMD performance with 96.5 % solar energy utilization efficiency. The SA-M-PVDF membrane exhibited high scaling-resistance ability and robust structural stability, sustaining over 40 h of continuous PMD operation with high-salinity feed, prospectively providing a facile and environmental approach for sustainably alleviating the freshwater and energy shortage.
淡水短缺已逐渐成为全球亟待解决的严重水危机。膜蒸馏技术与其他海水淡化技术相比,具有非挥发性成分的高去除率和给水耐盐性好等优点,被认为是一种很有前途的海水淡化技术。然而,传统的MD面临着热损失和膜结垢等挑战。本课题开发了一种基于天然产物的海藻酸钠/黑色素纳米颗粒复合聚偏氟乙烯膜(SA-M-PVDF膜),该膜具有优异的光热效应和高亲水性,可使SA-M-PVDF膜分别具有优异的光热膜蒸馏(PMD)性能和抗结垢性能,从而解决热损失和膜频繁结垢的难题。此外,由于黑色素纳米粒子和SA的生物材料特性,SA- m - pvdf膜的合成规避了对产品水的二次污染风险。正如预期的那样,SA-M-PVDF膜具有优异的PMD性能,太阳能利用效率为96.5%。SA-M-PVDF膜具有较高的抗结垢能力和强大的结构稳定性,在高盐度进料条件下可连续运行40多小时,有望为可持续缓解淡水和能源短缺提供一种简便环保的方法。
期刊介绍:
The Journal of Membrane Science is a publication that focuses on membrane systems and is aimed at academic and industrial chemists, chemical engineers, materials scientists, and membranologists. It publishes original research and reviews on various aspects of membrane transport, membrane formation/structure, fouling, module/process design, and processes/applications. The journal primarily focuses on the structure, function, and performance of non-biological membranes but also includes papers that relate to biological membranes. The Journal of Membrane Science publishes Full Text Papers, State-of-the-Art Reviews, Letters to the Editor, and Perspectives.