Benzyl triphenyl phosphonium bromide as a corrosion inhibitor: A multifaceted study on aluminium protection in acidic environment

Mansi Y. Chaudhary , Meenakshi Gupta , Yudhvir Singh Sharma , Prerna Bansal , Shikha Kaushik , Rajni Kanojia , Manish Kumar Gautam , Shramila Yadav
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Abstract

Corrosion, a globally recognized issue, leads to reduced efficiency, significant economic losses, and the depletion of natural resources. Ionic liquids, particularly phosphonium-based compounds, are considered environmentally benign and sustainable alternatives. In this study, the use of Benzyl Triphenyl Phosphonium Bromide (BTPB) as a novel and efficient corrosion inhibitor for 6106 aluminum alloy in hydrochloric acid was investigated through electrochemical and surface analysis techniques. Potentiodynamic polarization, electrochemical impedance spectroscopy (EIS), and weight loss measurements were employed to evaluate its inhibition performance. BTPB exhibited an exceptional maximum inhibition efficiency of 95.95 % at 308 K, with efficiency improving with increasing concentration. Adsorption studies indicated that BTPB follows the Langmuir adsorption isotherm, while thermodynamic analysis provided deeper insights into the adsorption mechanism. Furthermore, surface characterization by scanning electron microscopy (SEM), atomic force microscopy (AFM), and density functional theory (DFT) calculations supported the experimental findings, confirming strong interactions between BTPB molecules and the aluminum surface. The outstanding inhibition efficiency, combined with the green and environmentally friendly nature of BTPB, underscores its potential as an advanced corrosion inhibitor for aluminum alloys in acidic environments.

Abstract Image

苯三苯基溴化磷缓蚀剂:酸性环境下铝保护的多方面研究
腐蚀是一个全球公认的问题,它会导致效率降低、巨大的经济损失和自然资源的枯竭。离子液体,特别是磷基化合物,被认为是环境友好和可持续的替代品。本研究通过电化学和表面分析技术,研究了苯三苯基溴化磷(BTPB)作为一种新型高效的盐酸缓蚀剂对6106铝合金的腐蚀性能。通过动电位极化、电化学阻抗谱(EIS)和失重测量来评价其缓蚀性能。BTPB在308 K时的最大抑菌率为95.95%,且随着浓度的增加抑菌率有所提高。吸附研究表明,BTPB遵循Langmuir吸附等温线,而热力学分析则对吸附机理有更深入的了解。此外,通过扫描电子显微镜(SEM)、原子力显微镜(AFM)和密度泛函理论(DFT)计算的表面表征支持了实验结果,证实了BTPB分子与铝表面之间存在强相互作用。优异的缓蚀效率,加上BTPB绿色环保的特性,突显了它作为酸性环境下铝合金的高级缓蚀剂的潜力。
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CiteScore
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