Kellenberger Andrea, Duca Delia Andrada, Dan Mircea Laurentiu, Medeleanu Mihai
Faculty of Industrial Chemistry and Environmental Engineering, Politehnica University Timisoara, Piata Victoriei No. 2, 300006 Timisoara, Romania.
Materials (Basel). 2022 Apr 16;15(8):2918. doi: 10.3390/ma15082918.
The current work explores the potential for recycling unused or expired Midazolam (MID) drug, a benzodiazepine derivative, as an efficient corrosion inhibitor for copper in nitric acid solution. The technical advantage of recycling expired MID drug relates to the avoidance of organic inhibitor production costs and the reduction of disposal costs of the expired medication. A combination of electrochemical methods (potentiodynamic polarization and electrochemical impedance spectroscopy), weight loss, and quantum chemical calculation were used to assess the inhibition mechanism and efficiency of MID. It was found that inhibition efficiency increases with inhibitor concentration, reaching a highest value of 92.9% for a concentration of 10 M MID. MID was classified as a mixed-type inhibitor, showing a preferential cathodic suppression mechanism. The obtained values of -45.89 kJ mol for the standard free energy of adsorption indicate that the inhibition mechanism is based on chemisorption of MID molecules on the copper surface, which obeys the Langmuir isotherm. Surface analysis using scanning electronic microscopy revealed that MID offers high protection against corrosion during both immersion and polarization tests. Molecular modelling and quantum chemical calculations indicated chemical interactions between MID molecules and the copper surface, as well as electrostatic interactions. The results obtained using the different techniques were in good agreement and highlight the effectiveness of MID in the corrosion inhibition of copper.
当前的工作探索了回收未使用或过期的咪达唑仑(MID)药物(一种苯二氮䓬衍生物)作为硝酸溶液中铜的高效腐蚀抑制剂的潜力。回收过期MID药物的技术优势在于避免了有机抑制剂的生产成本,并降低了过期药物的处置成本。采用电化学方法(动电位极化和电化学阻抗谱)、失重法和量子化学计算相结合的方式来评估MID的抑制机理和效率。研究发现,抑制效率随抑制剂浓度的增加而提高,当MID浓度为10 M时,抑制效率达到最高值92.9%。MID被归类为混合型抑制剂,表现出优先的阴极抑制机制。吸附标准自由能的-45.89 kJ mol值表明,抑制机理基于MID分子在铜表面的化学吸附,这符合朗缪尔等温线。使用扫描电子显微镜进行的表面分析表明,在浸泡和极化试验中,MID都能提供高度抗腐蚀保护。分子建模和量子化学计算表明,MID分子与铜表面之间存在化学相互作用以及静电相互作用。使用不同技术获得的结果高度一致,突出了MID在铜腐蚀抑制方面的有效性。