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The influence of temperature on selenate adsorption by goethite

机译:温度对针铁矿吸附硒酸盐的影响

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摘要

Acid-base batch titration data up to 75 °C were used to constrain a temperature-dependent 1-pK basic Stern model of the surface protonation reactions of goethite. Experimental data for the temperature dependence of pHPZC (as determined using the two-term Van't Hoff extrapolation) yielded a negative value of -44.9 kJ/mol for the surface protonation enthalpy, and therefore a shift of the zero point of charge towards lower pH values with increasing temperature. Batch titrations at selenate concentrations of between 10 and 100 μM showed an increased degree of adsorption in the acidic pH range, which appeared to be sensitive to the ionic strength of the solution. The selenate adsorption edges shifted towards more acidic pH values with increasing temperature. A 1-pK charge distribution multi-site surface complexation (CD-MUSIC) model was applied, assuming the formation of an outer-spheric surface complex together with an inner-spheric one, in agreement with published spectroscopic information. The temperature behaviour of the intrinsic equilibrium constants were well represented by a linear Van't Hoff logK vs. 1/T plot, from which negative enthalpy values could be derived for both adsorption reactions. The adsorption of the selenate was therefore exothermic and became weaker with increasing temperature. The bidentate inner-spheric complex was more sensitive to rises in temperature (-70 kJ/mol), compared to the outer-spheric complex (-36 kJ/mol). The latter ultimately became the dominating adsorption process at the highest temperature studied.
机译:高达75°C的酸碱批次滴定数据用于约束针铁矿表面质子化反应的温度依赖性1-pK基本Stern模型。 pHPZC的温度依赖性的实验数据(使用两次Van't Hoff外推法确定)得出的表面质子焓为-44.9 kJ / mol的负值,因此电荷零点向更低方向移动pH值随温度升高而增加。硒酸浓度在10和100μM之间的分批滴定表明在酸性pH范围内吸附程度增加,这似乎对溶液的离子强度敏感。随着温度的升高,硒酸盐的吸附边移向更酸性的pH值。应用了一个1-pK电荷分布多部位表面络合(CD-MUSIC)模型,并假设与公开的光谱信息一致,形成了一个外球面复合物和一个内球面复合物。内在平衡常数的温度行为很好地表示为线性Van't Hoff logK对1 / T图,从中可以得出两个吸附反应的负焓值。因此,硒酸盐的吸附是放热的,并且随着温度的升高而变弱。与外部球形复合物(-36 kJ / mol)相比,双齿内部球形复合物对温度升高(-70 kJ / mol)更敏感。后者最终成为研究的最高温度下的主要吸附过程。

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