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Nanoscopic characterization of the water vapor-salt interfacial layer reveals a unique biphasic adsorption process.


ABSTRACT: Our quantitative understanding of water adsorption onto salt surfaces under ambient conditions is presently quite poor owing to the difficulties in directly characterizing this interfacial layer under these conditions. Here we determine the thickness of the interfacial layer on NaCl at different relative humidities (RH) based on a novel application of atomic force spectroscopy and capillary condensation theory. In particular, we take advantage of the microsecond-timescale of the capillary condensation process to directly resolve the magnitude of its contribution in the tip-sample interaction, from which the interfacial water thickness is determined. Further, to correlate this thickness with salt dissolution, we also measure surface conductance under similar conditions. We find that below 30% RH, there is essentially only the deposition of water molecules onto this surface, typical of conventional adsorption onto solid surfaces. However, above 30% RH, adsorption is simultaneous with the dissolution of ions, unlike conventional adsorption, leading to a rapid increase of surface conductance. Thus, water adsorption on NaCl is an unconventional biphasic process in which the interfacial layer not only exhibits quantitative differences in thickness but also qualitative differences in composition.

SUBMITTER: Yang L 

PROVIDER: S-EPMC4985642 | biostudies-literature | 2016 Aug

REPOSITORIES: biostudies-literature

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Nanoscopic characterization of the water vapor-salt interfacial layer reveals a unique biphasic adsorption process.

Yang Liu L   He Jianfeng J   Shen Yi Y   Li Xiaowei X   Sun Jielin J   Czajkowsky Daniel M DM   Shao Zhifeng Z  

Scientific reports 20160816


Our quantitative understanding of water adsorption onto salt surfaces under ambient conditions is presently quite poor owing to the difficulties in directly characterizing this interfacial layer under these conditions. Here we determine the thickness of the interfacial layer on NaCl at different relative humidities (RH) based on a novel application of atomic force spectroscopy and capillary condensation theory. In particular, we take advantage of the microsecond-timescale of the capillary conden  ...[more]

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