Pantuso Elvira, Ahmed Ejaz, Fontananova Enrica, Brunetti Adele, Tahir Ibrahim, Karothu Durga Prasad, Alnaji Nisreen Amer, Dushaq Ghada, Rasras Mahmoud, Naumov Panče, Di Profio Gianluca
Consiglio Nazionale delle Ricerche (CNR), Istituto per la Tecnologia delle Membrane (ITM), Via P. Bucci, Cubo 17/C, 87036, Rende (CS), Italy.
Smart Materials Lab, New York University Abu Dhabi, PO Box 129188, Abu Dhabi, UAE.
Nat Commun. 2023 Sep 16;14(1):5751. doi: 10.1038/s41467-023-41446-9.
The growing freshwater scarcity has caused increased use of membrane desalination of seawater as a relatively sustainable technology that promises to provide long-term solution for the increasingly water-stressed world. However, the currently used membranes for desalination on an industrial scale are inevitably prone to fouling that results in decreased flux and necessity for periodic chemical cleaning, and incur unacceptably high energy cost while also leaving an environmental footprint with unforeseeable long-term consequences. This extant problem requires an immediate shift to smart separation approaches with self-cleaning capability for enhanced efficiency and prolonged operational lifetime. Here, we describe a conceptually innovative approach to the design of smart membranes where a dynamic functionality is added to the surface layer of otherwise static membranes by incorporating stimuli-responsive organic crystals. We demonstrate a gating effect in the resulting smart dynamic membranes, whereby mechanical instability caused by rapid mechanical response of the crystals to heating slightly above room temperature activates the membrane and effectively removes the foulants, thereby increasing the mass transfer and extending its operational lifetime. The approach proposed here sets a platform for the development of a variety of energy-efficient hybrid membranes for water desalination and other separation processes that are devoid of fouling issues and circumvents the necessity of chemical cleaning operations.
日益严重的淡水短缺促使人们更多地使用海水膜淡化技术,这是一种相对可持续的技术,有望为水资源日益紧张的世界提供长期解决方案。然而,目前工业规模使用的脱盐膜不可避免地容易受到污染,导致通量下降,需要定期进行化学清洗,而且能源成本高得令人难以接受,同时还会留下具有不可预见长期后果的环境足迹。这个现存的问题需要立即转向具有自清洁能力的智能分离方法,以提高效率并延长使用寿命。在这里,我们描述了一种在概念上创新的智能膜设计方法,通过结合刺激响应有机晶体,在原本静态的膜表面层添加动态功能。我们在所得的智能动态膜中展示了一种门控效应,即晶体在略高于室温的温度下对加热的快速机械响应所引起的机械不稳定性激活了膜,并有效地去除了污垢,从而增加了传质并延长了其使用寿命。这里提出的方法为开发各种用于水淡化和其他分离过程的节能混合膜奠定了基础,这些膜不存在污垢问题,也避免了化学清洗操作的必要性。