Gang Lu, Hubao A, Yuanyuan Zhao, Yan Zhao, Hengyue Xu, Wentao Shang, Xi Chen, Jiawei Sun, Huacheng Zhang, Jun Wu, Bing Dai, Bart Van der Bruggen, Raf Dewil, Alicia Kyoungjin An, Shuang Zheng
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引用次数: 0
摘要
自组装和集料工程的创新使膜能够更好地平衡透水性和排盐性,克服了传统的权衡。在这里,我们展示了一种在纳米受限空间中使用多价氢键相互作用来操纵可控和有组织结晶的策略。具体来说,我们设计了两亲性低聚物,其疏水片段具有强极性端盖基序。当在空气/水界面上扩散时,疏水部分排斥水,在纳米约束下产生有序的超分子低聚物排列,而强极性部分参与强氢键并重新配置以与水分子强烈相互作用,从而实现纳米约束晶体域的受控组装和取向。这种安排提供了双重好处:细化孔径分布的超选择性和提高水渗透的自由体积。与具有弱极性基序的低聚物相比,优化膜厚度为6 nm,在压力驱动条件下,其透水性为14.8 L m−2 h−1 bar−1,水/NaCl选择性超过54 bar−1。这项研究揭示了纳米自组装和聚合工程如何影响聚合物膜的结构、功能和性能,强调了超薄膜中可控结晶的前景,以实现最佳的海水淡化。
Nano-confined controllable crystallization in supramolecular polymeric membranes for ultra-selective desalination
Innovations in self-assembly and aggregate engineering have led to membranes that better balance water permeability with salt rejection, overcoming traditional trade-offs. Here we demonstrate a strategy that uses multivalent H-bond interactions at the nano-confined space to manipulate controllable and organized crystallization. Specifically, we design amphiphilic oligomers featuring hydrophobic segments with strongly polar end-capped motifs. When spreading on air/water interfaces, the hydrophobic parts repel water, yielding an ordered alignment of supramolecular oligomers under nano-confinement, while the strongly polar sections engage in strong hydrogen bonding and reconfigure to strongly interact with water molecules, enabling the controlled assembly and orientation of nano-confined crystalline domains. This arrangement provides dual benefits: refining the distribution of pore sizes for ultra-selectivity and boosting the free volume for water permeation. Compared to counterpart oligomers with weakly polar motifs, the optimized membrane with a 6-nm thickness demonstrates the water permeability of 14.8 L m−2 h−1 bar−1 and extraordinary water/NaCl selectivity of more than 54 bar−1 under pressure-driven condition. This study sheds light on how nano-confined self-assembly and aggregate engineering affect the architectures, functionality, and performance of polymer membranes, emphasizing the promise of controllable crystallization in ultrathin membranes for optimal desalination.
期刊介绍:
Nature Communications, an open-access journal, publishes high-quality research spanning all areas of the natural sciences. Papers featured in the journal showcase significant advances relevant to specialists in each respective field. With a 2-year impact factor of 16.6 (2022) and a median time of 8 days from submission to the first editorial decision, Nature Communications is committed to rapid dissemination of research findings. As a multidisciplinary journal, it welcomes contributions from biological, health, physical, chemical, Earth, social, mathematical, applied, and engineering sciences, aiming to highlight important breakthroughs within each domain.