Department of Mechanical Engineering, Faculty of Engineering, University of Malaya, 50603, Malaysia; Department of Chemical Engineering, Faculty of Engineering, Balochistan University of Information Technology, Engineering and Management Sciences, Airport Road, Baleli, Quetta 87650, Balochistan, Pakistan.
Department of Chemistry, Faculty of Science, University of Malaya, 50603, Malaysia.
J Colloid Interface Sci. 2017 Sep 15;502:134-145. doi: 10.1016/j.jcis.2017.04.061. Epub 2017 Apr 30.
The inhibitory effect of two Schiff bases 3-(5-methoxy-2-hydroxybenzylideneamino)-2-(-5-methoxy-2-hydroxyphenyl)-2,3-dihydroquinazoline-4(1H)-one (MMDQ), and 3-(5-nitro-2-hydroxybenzylideneamino)-2(5-nitro-2-hydroxyphenyl)-2,3-dihydroquinazoline-4(1H)-one (NNDQ) on the corrosion of mild steel in 1M hydrochloric acid were studied using mass loss, potentiodynamic polarization technique and electrochemical impedance spectroscopy measurements at ambient temperature. The investigation results indicate that the Schiff Bases compounds with an average efficiency of 92% at 1.0mM of additive concentration have fairly effective inhibiting properties for mild steel in hydrochloric acid, and acts as mixed type inhibitor character. The inhibition efficiencies measured by all measurements show that the inhibition efficiencies increase with increase in inhibitor concentration. This reveals that the inhibitive mechanism of inhibitors were primarily due to adsorption on mild steel surface, and follow Langmuir adsorption isotherm. The temperature effect on the inhibition process in 1MHCl with the addition of investigated Schiff bases was studied at a temperature range of 30-60°C, and the activation parameters (Ea, ΔH and ΔS) were calculated to elaborate the corrosion mechanism. The differences in efficiency for two investigated inhibitors are associated with their chemical structures.
两种希夫碱 3-(5-甲氧基-2-羟基苯亚甲基氨基)-2-(-5-甲氧基-2-羟基苯基)-2,3-二氢喹唑啉-4(1H)-酮(MMDQ)和 3-(5-硝基-2-羟基苯亚甲基氨基)-2-(5-硝基-2-羟基苯基)-2,3-二氢喹唑啉-4(1H)-酮(NNDQ)对在环境温度下在 1M 盐酸中腐蚀的低碳钢的抑制作用进行了研究,使用质量损失、动电位极化技术和电化学阻抗谱测量。研究结果表明,在 1.0mM 添加剂浓度下,希夫碱化合物的平均效率为 92%,对盐酸中的低碳钢具有相当有效的抑制性能,并且表现为混合类型抑制剂的特性。所有测量方法测量的抑制效率表明,随着抑制剂浓度的增加,抑制效率增加。这表明抑制剂的抑制机制主要是由于在低碳钢表面的吸附,并且遵循 Langmuir 吸附等温线。在添加研究的希夫碱的 1MHCl 中,在 30-60°C 的温度范围内研究了对抑制过程的温度影响,并计算了活化参数(Ea、ΔH 和 ΔS)以阐述腐蚀机制。两种研究抑制剂的效率差异与其化学结构有关。