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Real-Time Monitoring of Hydrogen Peroxide Consumption in an Oxidation Reaction in Molecular Solvent and Ionic Liquids by a Hydrogen Peroxide Electrochemical Sensor

机译:通过过氧化氢电化学传感器在分子溶剂和离子液中氧化反应中过氧化氢消耗的实时监测

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摘要

An efficient electrochemical protocol to monitor hydrogen peroxide consumption during metal-catalyzed oxidation by using screen-printed electrodes modified with Prussian blue is presented. In particular, cyclooctene oxidation to cyclooctene oxide, catalyzed by a vanadium(V)-salophen complex (H(2)salophen=N,N'-o-phenylenebis(salicylideneimine)), in molecular and ionic media was tested. Initially, a protocol for batch analysis was developed for a monophasic system in acetonitrile, and subsequently, an in situ protocol was developed for a biphasic system of 1-butyl-3-methylimidazolium hexa-fluorophosphate/phosphate buffer. Calibration curves were performed in amperometric mode by applying -50 mV versus an Ag pseudo-reference. The calibration curve of hydrogen peroxide showed a linear correlation from 1 x 10(-6) up to 5 x 10(-3) mol L-1 with satisfactory inter-and intra-electrode reproducibility (relative standard deviation (RSD) values of 5 and 13%, respectively, for the monophasic system and 11 and 13%, respectively, for the biphasic system). Kinetic studies to investigate the oxidation reaction for both the mono-and biphasic systems have been carried out in amperometric mode as well. Firstly, the decomposition of hydrogen peroxide was examined, which showed that, in 1-butyl-3-methylimidazolium hexafluorophosphate, it completely decomposed in 300 min, whereas in acetonitrile, in the same time frame, 20% of the initial amount was still active. In the presence of 1% of the catalyst the decomposition rate increased in both solvents. Finally, the complete oxidation of cyclooctene was followed and the effective conversion was determined. The developed protocols showed high reproducibility, with the advantage that the environmentally friendly biphasic system could also be recycled. The good analytical performance obtained, coupled with a short analysis time, the possibility of in-line automation and the use of ionic liquids instead of molecular solvents, made this system a very attractive choice for monitoring oxidative reactions.
机译:呈现了一种有效的电化学方案,以通过使用普鲁士蓝改性的丝网印刷电极来监测金属催化氧化期间的过氧化氢消耗。特别地,测试了通过钒(V) - 仲料烯复合物(H(2)助膦= N,N'-O-苯基(Salicylynynynbis(Salicylynynynynbis(Salicylynynynymine)(Salicylynynymine)的环庚烯氧化的环辛氧化氧化在分子和离子培养基中。最初,为乙腈中的单选式系统开发了一种用于分类分析的方案,随后,为1-丁基-3-甲基咪唑庚烷 - 氟磷酸磷酸磷酸盐/磷酸盐缓冲液的双相系统开发了原位方案。通过施加-50mV与AG伪参考,在算法中以算法进行校准曲线。过氧化氢的校准曲线显示,从1×10(-6)至5×10(-3)摩尔L-1的线性相关性,具有令人满意的和电极间再现性(相对标准偏差(RSD)值5对于双相系统,分别为单选式系统和11%和13%,分别为13%)。为了研究单级和双相系统的氧化反应也已经在安培模式下进行了动力学研究。首先,研究了过氧化氢的分解,显示出,在六氟磷酸盐中,它在300分钟内完全分解,而在乙腈中,在同一时间框架中,初始量的20%仍然活跃。在1%的催化剂存在下,两种溶剂中的分解速率增加。最后,遵循完全氧化环辛烯并测定有效转化率。开发的协议表现出高再现性,具有环保双相系统也可以回收的优点。获得的良好分析性能,再加上短的分析时间,在线自动化和使用离子液体而不是分子溶剂的可能性,使该系统成为监测氧化反应的非常有吸引力的选择。

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