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高湿度下碳棒异常排水。

Anomalous water expulsion from carbon-based rods at high humidity.

机构信息

Energy &Environment Directorate, Pacific Northwest National Laboratory, Richland, Washington 99354, USA.

Environmental Molecular Sciences Laboratory, Pacific Northwest National Laboratory, Richland, Washington 99354, USA.

出版信息

Nat Nanotechnol. 2016 Sep;11(9):791-7. doi: 10.1038/nnano.2016.91. Epub 2016 Jun 13.

Abstract

Three water adsorption-desorption mechanisms are common in inorganic materials: chemisorption, which can lead to the modification of the first coordination sphere; simple adsorption, which is reversible; and condensation, which is irreversible. Regardless of the sorption mechanism, all known materials exhibit an isotherm in which the quantity of water adsorbed increases with an increase in relative humidity. Here, we show that carbon-based rods can adsorb water at low humidity and spontaneously expel about half of the adsorbed water when the relative humidity exceeds a 50-80% threshold. The water expulsion is reversible, and is attributed to the interfacial forces between the confined rod surfaces. At wide rod spacings, a monolayer of water can form on the surface of the carbon-based rods, which subsequently leads to condensation in the confined space between adjacent rods. As the relative humidity increases, adjacent rods (confining surfaces) in the bundles are drawn closer together via capillary forces. At high relative humidity, and once the size of the confining surfaces has decreased to a critical length, a surface-induced evaporation phenomenon known as solvent cavitation occurs and water that had condensed inside the confined area is released as a vapour.

摘要

三种水吸附-解吸机制在无机材料中很常见:化学吸附,可能导致第一配体层的修饰;简单吸附,是可逆的;和冷凝,是不可逆的。无论吸附机制如何,所有已知的材料都表现出一种吸附等温线,其中吸附的水量随着相对湿度的增加而增加。在这里,我们表明,碳基棒可以在低湿度下吸附水,并且当相对湿度超过 50-80%的阈值时,会自发地排出约一半吸附的水。水的排出是可逆的,这归因于受限棒表面之间的界面力。在宽棒间距下,碳基棒表面可以形成单层水,随后导致相邻棒之间的受限空间中的冷凝。随着相对湿度的增加,通过毛细力,束中的相邻棒(限制表面)彼此更紧密地靠近。在高相对湿度下,一旦限制表面的尺寸减小到临界长度,就会发生一种称为溶剂空化的表面诱导蒸发现象,并且冷凝在受限区域内的水会作为蒸气释放。

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