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首页> 外文期刊>Electrochimica Acta >Experimental and atomistic simulation studies of corrosion inhibition of copper by a new benzotriazole derivative in acid medium
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Experimental and atomistic simulation studies of corrosion inhibition of copper by a new benzotriazole derivative in acid medium

机译:新型苯并三唑衍生物在酸性介质中抑制铜腐蚀的实验和原子模拟研究

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摘要

The efficiency of N-(2-thiazolyl)-1H-benzotriazole-1-carbothioamide (TBC) as a non-toxic corrosion inhibitor for copper in 0.5 M HCl has been tested by weight loss and electrochemical techniques. Electrochemical techniques show that TBC is a mixed-type inhibitor and its inhibition mechanism on copper surface is adsorption assisted by H-bond formation. Impedance measurements show a wide peak presumably given by more than one time constant in the presence of TBC. Also, impedance results show that the values of CPEs (constant phase elements) tend to decrease and both polarization resistance and inhibition efficiency tend to increase with increasing of TBC concentration due to an increase in the electric double layer. Monte Carlo simulations incorporating molecular mechanics and molecular dynamics show that the TBC adsorb on the copper surface firmly through the thiazolyl and carbothioamide groups, the adsorption energy as well as hydrogen bond length have been calculated for both TBC and benzotriazole (BTA) for comparison. Quantum chemical calculations reveal that TBC has higher HOMO, lower LUMO, lower energy gap and lower dipole moment (μ) than BTA, which proves that TBC is better copper corrosion inhibitor compared with BTA in 0.5 M HCl.
机译:已通过失重和电化学技术测试了N-(2-噻唑基)-1H-苯并三唑-1-碳硫酰胺(TBC)在0.5 M HCl中对铜的无毒腐蚀抑制剂的效率。电化学技术表明,TBC是一种混合型缓蚀剂,其在铜表面的缓蚀机理是通过氢键的形成来辅助吸附的。阻抗测量结果显示,在存在TBC时,宽峰可能由一个以上的时间常数给出。而且,阻抗结果表明,由于双电层的增加,随着TBC浓度的增加,CPEs(恒定相元素)的值趋于减小,并且极化电阻和抑制效率都趋于增加。结合分子力学和分子动力学的蒙特卡洛模拟表明,TBC通过噻唑基和碳硫酰胺基团牢固地吸附在铜表面,已计算了TBC和苯并三唑(BTA)的吸附能和氢键长度,以作比较。量子化学计算表明,TBC比BTA具有更高的HOMO,更低的LUMO,更低的能隙和更低的偶极矩(μ),这证明与0.5M HCl中的BTA相比,TBC是更好的铜腐蚀抑制剂。

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