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能源水系统中的先进材料:吸附、反应和传输中固/水界面的核心作用。

Advanced Materials for Energy-Water Systems: The Central Role of Water/Solid Interfaces in Adsorption, Reactivity, and Transport.

机构信息

Advanced Materials for Energy-Water Systems (AMEWS) Energy Frontier Research Center (EFRC), Argonne National Laboratory, 9700 South Cass Avenue, Lemont, Illinois 60439 United States.

Applied Materials Division, Argonne National Laboratory, 9700 South Cass Avenue, Lemont, Illinois 60439 United States.

出版信息

Chem Rev. 2021 Aug 11;121(15):9450-9501. doi: 10.1021/acs.chemrev.1c00069. Epub 2021 Jul 2.

Abstract

The structure, chemistry, and charge of interfaces between materials and aqueous fluids play a central role in determining properties and performance of numerous water systems. Sensors, membranes, sorbents, and heterogeneous catalysts almost uniformly rely on specific interactions between their surfaces and components dissolved or suspended in the water-and often the water molecules themselves-to detect and mitigate contaminants. Deleterious processes in these systems such as fouling, scaling (inorganic deposits), and corrosion are also governed by interfacial phenomena. Despite the importance of these interfaces, much remains to be learned about their multiscale interactions. Developing a deeper understanding of the molecular- and mesoscale phenomena at water/solid interfaces will be essential to driving innovation to address grand challenges in supplying sufficient fit-for-purpose water in the future. In this Review, we examine the current state of knowledge surrounding adsorption, reactivity, and transport in several key classes of water/solid interfaces, drawing on a synergistic combination of theory, simulation, and experiments, and provide an outlook for prioritizing strategic research directions.

摘要

材料与水相流体之间界面的结构、化学和电荷在决定众多水体系的性质和性能方面起着核心作用。传感器、膜、吸附剂和多相催化剂几乎都依赖于其表面与溶解或悬浮在水中的成分(通常还有水分子本身)之间的特定相互作用,以检测和减轻污染物。这些系统中的有害过程(如结垢、结垢(无机沉积物)和腐蚀)也受界面现象的控制。尽管这些界面非常重要,但对于它们的多尺度相互作用,我们还有很多需要了解的地方。深入了解水/固界面的分子和介观现象对于推动创新以解决未来提供足够适宜用途的水的重大挑战至关重要。在这篇综述中,我们考察了围绕几种关键水/固界面的吸附、反应性和输运的现有知识状况,借鉴了理论、模拟和实验的协同组合,并为确定战略研究方向提供了展望。

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