详细信息
Benzothiazole-based ionic liquids as environment-friendly and high-efficiency corrosion inhibitors for mild steel in HCl: Experimental and theoretical studies ( SCI-EXPANDED收录)
文献类型:期刊文献
英文题名:Benzothiazole-based ionic liquids as environment-friendly and high-efficiency corrosion inhibitors for mild steel in HCl: Experimental and theoretical studies
作者:Cui, Ling[1];Lv, Yanli[1];Dong, Yan[1];Liao, Haosen[1];Wu, Shiyong[1,2];Li, Xiao[1]
机构:[1]Univ Sci & Technol Liaoning, Sch Chem Engn, Anshan 114051, Peoples R China;[2]East China Univ Sci & Technol, Sch Resources & Environm Engn, Shanghai 200237, Peoples R China
年份:2024
卷号:394
外文期刊名:JOURNAL OF MOLECULAR LIQUIDS
收录:;WOS:【SCI-EXPANDED(收录号:WOS:001138916400001)】;
基金:This research was supported by the Basic Scientific Research Project of the Educational Department of Liaoning Province, China (Granted number: LJKZZ20220041) and Liaoning Revitalization Talents Program, China (Granted number: XLYC2002063) .
语种:英文
外文关键词:Ionic liquid; Corrosion inhibitor; Mild steel; Chemisorption; Molecular dynamics simulation
摘要:Two benzothiazole ionic liquids - (E)-3-ethyl-2-(4-hydroxystyryl) benzo[d]thiazol-3-ium iodide ([EHSBT]I) and (E)-3-ethyl-2-(4-hydroxystyryl)benzo[d]thiazol-3-ium bromide ([EHSBT]Br) generate the outstanding protection when employed as green corrosion inhibitors for the steel against aggressive acid solution at different temperatures. The corrosion efficiency of [EHSBT]I and [EHSBT]Br with the low dosage of 0.2 mM is 98.16 % and 89.68 %, respectively, at 303 K. The corrosion inhibition efficiency of [EHSBT]I decreases with the increased temperature and [EHSBT]Br is the opposite. Fortunately, both [EHSBT]I and [EHSBT]Br exhibit the inhibition efficiency of greater than 95 % even when it achieves 333 K, which is ascribed to the dominant chemical adsorption. Likewise, the electrochemical investigation presents the increasement of the charge transfer resistance and interfacial electric double layer thickness due to their adsorption on the substrate, restraining the metal dissolution and hydrogen evolution. The findings of the surface structure and appearance using UV-vis, FT-IR, XPS, SEM-EDS, AFM suggest that the inhibitors can form the complex film ([EHSTB]I-Fe, [EHSTB]Br-Fe) to shield the metal from corrosive particulates via chemical bonding. The confirmation of the active sites and adsorption configuration through theoretical calculation such as DFT and MD, along with RDF, promotes a further comprehension of the corrosion mitigation mechanism, which coincides with the experimental conclusion that the preparation of a stable protective film realizes the superior inhibition performance against high temperature acid corrosion.
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