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基于生物灵感的埃(Angstrom,长度单位,10-10 米)级异质 MOF-on-MOF 膜用于渗透能量收集。

Bioinspired Angstrom-Scale Heterogeneous MOF-on-MOF Membrane for Osmotic Energy Harvesting.

机构信息

School of Engineering, Macquarie University, Sydney, New South Wales 2109, Australia.

School of Chemical Engineering, University of Queensland, Brisbane, Queensland 4072, Australia.

出版信息

ACS Nano. 2023 Jul 11;17(13):12445-12457. doi: 10.1021/acsnano.3c01924. Epub 2023 Jun 22.

Abstract

Membrane-based salinity gradient energy generation from the osmotic potential at the interface of a river and seawater through reverse electrodialysis is a promising route for realizing clean, abundant, and sustainable energy. Membrane permeability and selective ion transport are crucial for efficient osmotic energy harvesting. However, balancing these two parameters in the membrane design and synthesis remains challenging. Herein, a hybridized bilayer metal-organic frameworks (MOF-on-MOF) membrane is fabricated for efficient transmembrane conductance for enhanced osmotic power generation. The heterogeneous membrane is constructed from imidazolate framework-8 (ZIF-8) deposited on a UiO-66-NH membrane intercalated with poly(sodium-4-styrenesulfonate) (PSS). The angstrom-scale cavities in the ZIF-8 layer promote ion selectivity by size exclusion, and the PSS-intercalated UiO-66-NH film ensures cation permeability. The synergistic effect is a simultaneous improvement in ion transport and selectivity from an overlapped electric double layer generating 40.01 W/m and 665 A/m permeability from a 500-fold concentration gradient interface at 3 KΩ and 9.20 W/m from mixing of real sea-river water. This work demonstrates a rational design strategy for hybrid membranes with improved ion selectivity and permeability for the water-energy nexus.

摘要

通过反渗透从河流和海水界面的渗透压中获取基于膜的盐度梯度能量是实现清洁、丰富和可持续能源的有前途的途径。膜的渗透性和选择性离子传输对于高效的渗透能量收集至关重要。然而,在膜设计和合成中平衡这两个参数仍然具有挑战性。本文制备了一种杂化双层金属-有机骨架(MOF-on-MOF)膜,用于高效的跨膜电导率,以增强渗透发电能力。该非均相膜由沉积在UiO-66-NH 膜上的咪唑骨架-8(ZIF-8)构建,UiO-66-NH 膜夹层中嵌入了聚(4-苯乙烯磺酸钠)(PSS)。ZIF-8 层中的埃级空腔通过尺寸排阻促进离子选择性,而 PSS 夹层的 UiO-66-NH 膜确保了阳离子的渗透性。协同效应是从重叠的双电层中同时提高离子传输和选择性的结果,从 500 倍浓度梯度界面产生 40.01 W/m 和 665 A/m 的渗透率,从实际海-河水混合产生 9.20 W/m 的渗透率。这项工作展示了一种用于水-能连接的具有改进的离子选择性和渗透性的混合膜的合理设计策略。

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