Inhibition of Fenton Reaction of Glucose by Alcohols and Tetrahydrofuran in Catalytic Concentrations. Calculation of the Stability Constants of ROH/Fe2+ Complexes

A. Vitale, E. Bernatene, A. Pomilio
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Abstract

The Fenton reaction is of growing interest due to its primary function in bodily processes and industrial waste disposal. However, the effects of alcohol on this reaction have not been addressed. Therefore, we analyze for the first time the role that catalytic concentrations of alcohols play in the Fenton reaction. The Fenton reaction was carried out by measuring oxidation-reduction potential and pH monitoring under dark conditions to avoid photochemical reactions. The reaction end point was established using the first derivative of plotting potential versus time. This point was also checked by the dichromate test for hydrogen peroxide detection. Gas-liquid chromatography was used to measure alcohol content. The Fenton reaction of glucose was performed first, and then each alcohol, including ethanol, methanol, iso-propanol, and ter-butanol, was added separately in catalytic amounts, as well as the cyclic ether tetrahydrofuran. The reaction rate constants and the stability constants of each complex formed were measured. Alcohols were shown to inhibit the Fenton reaction by forming iron-alcohol complexes. An iron-tetrahydrofuran complex was also formed. The crucial oxygen role in the functional group of alcohols and ethers is supported by a reaction with tetrahydrofuran. These results also explain the difficulties in the disposal of sugar-enriched alcoholic industrial effluents. Our findings show that alcohols, such as ethanol, methanol, iso-propanol, and ter-butanol at catalytic concentrations, slow down the Fenton reaction due to decreased iron availability by forming iron(II)-alcohol complexes. The method is also useful for calculating stability constants for iron-alcohol and iron-tetrahydrofuran complexes, which are not otherwise easy to assess.
醇和四氢呋喃在催化浓度下对葡萄糖Fenton反应的抑制作用。ROH/Fe2+配合物稳定常数的计算
芬顿反应由于其在身体过程和工业废物处理中的主要功能而越来越受到关注。然而,酒精对这种反应的影响尚未得到解决。因此,我们首次分析了醇的催化浓度在芬顿反应中的作用。芬顿反应是通过在黑暗条件下测量氧化还原电位和pH监测来进行的,以避免光化学反应。使用绘制电势与时间的一阶导数来确定反应终点。这一点也通过用于过氧化氢检测的重铬酸盐测试进行了检查。采用气相色谱法测定酒精含量。首先进行葡萄糖的芬顿反应,然后分别加入催化量的每种醇,包括乙醇、甲醇、异丙醇和叔丁醇,以及环醚四氢呋喃。测定了所形成的各配合物的反应速率常数和稳定性常数。醇通过形成铁醇络合物来抑制芬顿反应。还形成了铁-四氢呋喃络合物。氧在醇和醚官能团中的关键作用是由与四氢呋喃的反应支持的。这些结果也解释了处理富含糖的酒精工业废水的困难。我们的研究结果表明,醇,如乙醇、甲醇、异丙醇和叔丁醇,在催化浓度下,由于形成铁(II)-醇络合物降低了铁的有效性,从而减缓了Fenton反应。该方法也可用于计算铁醇和铁四氢呋喃络合物的稳定性常数,否则不容易评估。
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