Surface Hydroxyl Site Densities on Metal Oxides as a Measure for the Ion-Exchange Capacity

化学 脱质子化 氢氧化物 氧化物 无机化学 水溶液 赤铁矿 离子交换 氢氧化钠 质子化 羟基自由基 金属 碱金属 价(化学) 离子 试剂 物理化学 有机化学 矿物学 激进的
作者
Hiroki Tamura,Akio Tanaka,Ken-ya Mita,Ryusaburo Furuichi
出处
期刊:Journal of Colloid and Interface Science [Elsevier BV]
卷期号:209 (1): 225-231 被引量:234
标识
DOI:10.1006/jcis.1998.5877
摘要

Hydroxyl groups on metal oxide in water are the sites for ion exchange, and the surface hydroxyl site density on oxides is a measure of the ion-exchange capacity. Here, the Grignard reagent method was applied to determine the surface hydroxyl site density of oxide samples. The results were similar to those reported for different oxides with other methods (dehydration by heating, tritium exchange, crystallographic calculations, etc.), and they are comparable with those calculated from the closest packing of hydroxide ions. A mechanism of hydroxylation is proposed: lattice oxide ions (extremely strong bases) are exposed to aqueous solutions and are neutralized by water to become hydroxide ions. Also, the saturated deprotonation method was applied to hematite, and it was found that all the acid hydroxyl groups on hematite were deprotonated in very high concentrations of alkali solutions ( approximately 5 mol dm-3 NaOH), and from the saturated amount of OH- consumed by deprotonation, the same result as that by the Grignard method was obtained. It is shown that all hydroxyl groups take part in ion exchange and that the unusually small values reported elsewhere with the saturated (de)protonation method may contain errors. Hetero- or homogeneity of hydroxyl groups in contact with water as ion-exchange sites is also discussed. It is suggested that intensely hydrated layers at the oxide/water interface may result in homogeneous discrete sites. The development of microstructures in the oxides was suggested from the measured values of specific surface areas, and the effect of the microstructure environments on the reactivity of internal surface hydroxyl sites is discussed. Copyright 1999 Academic Press.
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