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用于压力驱动蒸馏的薄膜复合气隙膜

Thin-film composite vapor-gap membrane for pressure-driven distillation.

作者信息

Zhang Li, Yang Tianxiang, Zhao Zhenyi, Wang Zhi, Lin Shihong, Zhao Song

机构信息

School of Chemical Engineering and Technology, Tianjin University, Tianjin 300072, P. R. China.

Tianjin Key Laboratory of Membrane Science and Desalination Technology, State Key Laboratory of Chemical Engineering, Tianjin University, Tianjin 300072, P. R. China.

出版信息

Sci Adv. 2025 May 9;11(19):eadu6787. doi: 10.1126/sciadv.adu6787.

Abstract

Pressure-driven distillation (PD), as an emerging technology, holds tremendous potential for producing freshwater from nontraditional water sources. In this process, a sufficient hydraulic pressure is applied to drive water evaporation and vapor transport across a vapor-gap membrane. The development of the PD process critically depends on the availability of robust and large-area superhydrophobic membranes. Here, we propose an ultraselective superhydrophobic thin-film composite (TFC) vapor-gap membrane with confined transport channels toward the PD process, which can be manufactured scale-up through a facile swelling-assisted deposition strategy. The TFC-PD membrane demonstrates separation capabilities, achieving near-complete rejections of nonvolatile solutes, including salts, boron, and urea. Featured by a vapor-gap superhydrophobic layer, the TFC-PD membrane exhibits superior chlorine and scaling resistance and maintains stable performance over time without being oxidized or scaling. This work offers notable advancements in the microstructural design of PD membranes and the development of scalable robust TFC membranes for the PD process.

摘要

压力驱动蒸馏(PD)作为一种新兴技术,在从非传统水源生产淡水方面具有巨大潜力。在此过程中,施加足够的液压以驱动水蒸发并使蒸汽穿过气隙膜传输。PD工艺的发展关键取决于坚固且大面积超疏水膜的可用性。在此,我们提出一种具有朝向PD工艺的受限传输通道的超选择性超疏水薄膜复合(TFC)气隙膜,其可通过简便的溶胀辅助沉积策略进行放大制造。TFC-PD膜展示出分离能力,实现了对包括盐、硼和尿素在内的非挥发性溶质的近乎完全截留。以气隙超疏水层为特征,TFC-PD膜表现出优异的耐氯性和抗结垢性,并随时间保持稳定性能,不会被氧化或结垢。这项工作在PD膜的微观结构设计以及用于PD工艺的可扩展坚固TFC膜的开发方面取得了显著进展。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/0ac3/12063649/1737153ed47b/sciadv.adu6787-f1.jpg

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