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用于真空驱动纳滤的超渗透丝基聚合物膜。

Ultra-permeable silk-based polymeric membranes for vacuum-driven nanofiltration.

作者信息

Gan Bowen, Peng Lu Elfa, Liu Wenyu, Zhang Lingyue, Wang Li Ares, Long Li, Guo Hao, Song Xiaoxiao, Yang Zhe, Tang Chuyang Y

机构信息

Department of Civil Engineering, The University of Hong Kong, Pokfulam, Hong Kong SAR, China.

Institute of Environment and Ecology, Shenzhen International Graduate School, Tsinghua University, Shenzhen, China.

出版信息

Nat Commun. 2024 Oct 5;15(1):8656. doi: 10.1038/s41467-024-53042-6.

Abstract

Nanofiltration (NF) membranes are commonly supplied in spiral-wound modules, resulting in numerous drawbacks for practical applications (e.g., high operating pressure/pressure drop/costs). Vacuum-driven NF could be a promising and low-cost alternative by utilizing simple components and operating under an ultra-low vacuum pressure (<1 bar). Nevertheless, existing commercial membranes are incapable of achieving practically relevant water flux in such a system. Herein, we fabricated a silk-based membrane with a crumpled and defect-free rejection layer, showing water permeance of 96.2 ± 10 L m h bar and a NaSO rejection of 96.0 ± 0.6% under cross-flow filtration mode. In a vacuum-driven system, the membrane demonstrates a water flux of 56.8 ± 7.1 L m h at a suction pressure of 0.9 bar and high removal rate against various contaminants. Through analysis, silk-based ultra-permeable membranes may offer close to 80% reduction in specific energy consumption and greenhouse gas emissions compared to a commercial benchmark, holding great promise for advancing a more energy-efficient and greener water treatment process and paving the avenue for practical application in real industrial settings.

摘要

纳滤(NF)膜通常以螺旋缠绕模块的形式供应,这在实际应用中存在许多缺点(例如,高操作压力/压降/成本)。通过使用简单的组件并在超低真空压力(<1巴)下运行,真空驱动的纳滤可能是一种有前途且低成本的替代方案。然而,现有的商业膜在这样的系统中无法实现实际相关的水通量。在此,我们制备了一种具有褶皱且无缺陷截留层的丝基膜,在错流过滤模式下,其水渗透率为96.2±10 L m⁻² h⁻¹ bar⁻¹,对NaSO₄的截留率为96.0±0.6%。在真空驱动系统中,该膜在0.9巴的抽吸压力下表现出56.8±7.1 L m⁻² h⁻¹的水通量以及对各种污染物的高去除率。通过分析,与商业基准相比,丝基超渗透膜的特定能耗和温室气体排放可能降低近80%,这为推进更节能、更环保的水处理工艺以及为实际工业环境中的实际应用铺平道路带来了巨大希望。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/95eb/11455960/a56b2d3a72b2/41467_2024_53042_Fig1_HTML.jpg

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