Abstract

Resolution of the atomistic and electronic details about the coordination structure variation of hydrated ions in the interfacial water is still a tough challenge, which is, however, essentially important for the understanding of ion adsorption, permeation and other similar processes in aqueous solutions. Here we report the tracing of coordination structure variation for hydrated Cu2+/Br1- ions traversing the interfacial water in Vycor mesopores (ϕ = 7.6 nm) by employing both X-ray absorption near edge structure and extended X-ray absorption fine structure spectroscopies. By controlled desorption/adsorption of water, the filling fraction of the mesopores, thus the water layer thickness, can be adjusted, which in turn effects the variation of coordination structure of the ions therein. It is found that both Cu2+ and Br1- ions prefer staying exclusively in the core water, and in this circumstance no ion pairs have been detected in the solution of concentrations up to 1.0 M. Following capillary decondensation occurring at a filling fraction of ∼35% which corresponds to a water layer of about three monolayers, Br1- ions begin immediately to reconstruct their first coordination shell, characterized by ionic dehydration, shrinkage of ion-water bond length, and formation of ion pairs. In contrast, Cu2+ ions can retain a bulk-like coordination structure till being driven to bond directly to the pore surface when the filling fraction is below 20%. At the final stage of dehydration via thermal vacuum treatment at 110°C, Cu2+ ions can be completely reduced to the Cu1+ state, and recover at room temperature only when the filling fraction is above 14%. These results may be inspirable for the investigation of similar problems concerning hydrated ions in water solution under different confining conditions.

Highlights

  • The coordination structure of hydrated ions is usually very sensitive to the condition of the surrounding water

  • By using X-ray absorption spectroscopy (XAS) analysis including both X-ray absorption near edge structure (XANES) and extended X-ray absorption fine structure (EXAFS) spectroscopic measurements, we successfully traced the dynamic coordination structure variation of hydrated Cu2+- and Br1- ions in the desorption-adsorption cycle performed on 0.1 M CuBr2 aqueous solution loaded in Vycor mesopores

  • Due to the increased self energy of hydrated ions when approaching the surface. It is as low as 2-10 for the first monolayer of adsorbed water2), ions confined in the interfacial water layer still prefer staying far away from the pore surface. This is to say that the distance between the hydrated ions and the pore surface can be adjusted by carefully controlling the desorption process of interfacial water

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Summary

INTRODUCTION

The coordination structure of Cu2+ and Br1- ions in bulk solution of different concentrations has been widely investigated, both experimentally and by simulation, and those results can serve as a good reference.[11,12,13,14,15,16,17,18] a nearly-neutral mesopore surface suffices to prevent direct bonding of these ions to the surface, a scenario with all the ions initially staying in the interfacial water can be realized. By using XAS analysis including both X-ray absorption near edge structure (XANES) and extended X-ray absorption fine structure (EXAFS) spectroscopic measurements, we successfully traced the dynamic coordination structure variation of hydrated Cu2+- and Br1- ions in the desorption-adsorption cycle performed on 0.1 M CuBr2 aqueous solution loaded in Vycor mesopores.

Sample Preparation
XAS Analysis
RESULTS AND DISCUSSION
CONCLUSIONS
Full Text
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