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首页> 外文期刊>Applied Surface Science >A combined experimental and theoretical study of papain as a biological eco-friendly inhibitor for copper corrosion in H_2SO_4 medium
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A combined experimental and theoretical study of papain as a biological eco-friendly inhibitor for copper corrosion in H_2SO_4 medium

机译:木瓜蛋白酶对H_2SO_4介质中铜腐蚀的生物环保抑制剂的组合实验和理论研究

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摘要

Papain freeze dried (PFD) was used as a novel, eco-friendly and efficient inhibitor for copper corrosion in H2SO4 medium via experimental and theoretical calculation methods. These WA methods include classical weight loss experiment, electrochemical measurements, surface morphology researches, and theoretical calculations. The data of weight loss experiment proves that with the increase of temperature, PFD still exhibits excellent anti-corrosion performance. The corrosion inhibition efficiency of PFD can still be maintained at about 95% at 313 K. The results of electrochemical experiments indicate that PFD is the mixed-type inhibitor that can simultaneously restrain the reaction of anode and cathode. Both the impedance experiment results and polarization experiment data show that the corrosion inhibition efficiency of PFD exceeds 95%. The atomic force microscope (AFM) and scanning electron microscope (SEM) test results intuitively show the excellent inhibition performance of PFD. The X-ray photoelectron spectroscopy (XPS) experimental data demonstrated the formation of N-Cu bond, indicating that PFD can effectively separate the corrosive medium by chemical adsorption on the copper surface. Molecular dynamics simulations (MDS) manifest that PFD can adsorption on the Cu (1 1 1) surface via the parallel pattern. Besides, the adsorption process of PFD on copper surface obey the Langmuir mono-layer adsorption.
机译:通过实验和理论计算方法,将木瓜蛋白酶冷冻干燥(PFD)用作新型,环保,高效的H2SO4介质中铜腐蚀抑制剂。这些WA方法包括经典的失重实验,电化学测量,表面形态研究和理论计算。失重实验数据证明,随着温度的升高,PFD仍具有优良的防腐性能。 PFD的腐蚀抑制效率在313 K时仍可保持在95%左右。电化学实验结果表明PFD是可同时抑制阳极和阴极反应的混合型抑制剂。阻抗实验结果和极化实验数据均表明,PFD的缓蚀效率超过95%。原子力显微镜(AFM)和扫描电子显微镜(SEM)的测试结果直观地显示了PFD的优异抑制性能。 X射线光电子能谱(XPS)实验数据证明了N-Cu键的形成,表明PFD可以通过化学吸附在铜表面上有效地分离腐蚀性介质。分子动力学模拟(MDS)表明PFD可以通过平行图案吸附在Cu(1 1 1)表面上。此外,PFD在铜表面的吸附过程遵循Langmuir单层吸附。

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