Synergistic Effects Between 2-Mercaptoethanol and 2-Methyl-imidazoline as Corrosion Inhibitors in CO2-Saturated NaCl Solution: DFT and Experiments

Синергетическое действие 2-меркаптоэтанола и 2-метил-имидазолина в качестве ингибиторов коррозии в CO2-насыщенном растворе NaCl: DFT и эксперименты
Jeremy Moloney, Dharmendr Kumar, Venkata Muralidhar K, Vinay Jain
2026-03-06

2-mercaptoethanol2-methyl-imidazolineCO2-induced corrosion in NaCl brineadsorption energy and HOMO-LUMO gap (Egap)density functional theory (DFT)
Abstract CO2-induced corrosion of carbon steel in brines is a pervasive and costly challenge in oil and gas pipelines. While imidazoline derivatives have been traditional inhibitors, their film formation may be compromised under CO2 corrosion conditions, requiring high dosage and offering limited coverage. This study is motivated by the need to design low-dosage, high-efficiency inhibitors by integrating small sulfur-containing molecules in synergy with imidazolines. We have evaluated the individual and combined performance of 2-mercaptoethanol (ME) and 2-methyl-imidazoline (MI) using density functional theory (DFT) and experiments. ME-MI (1:1) exhibits a lower HOMO-LUMO gap (Egap) and higher adsorption energy (in magnitude) than the individual molecules indicative of a synergistic effect between them. For individual molecules, the surface-coverage of ME shows higher adsorption energy and better coverage compared to MI, suggesting better inhibition performance of ME over MI even though the individual Egap and adsorption energy values suggest otherwise. Electron density difference (EDD) plots further suggest that both ME and MI strongly adsorb on Fe3C surface. The experimental results in CO2-saturated 3% NaCl confirm that while ME outperforms MI in terms of individual performance, a 1:1 ME-MI blend delivers a higher efficiency thus indicating synergistic effects as evidenced by DFT calculations.
1
A 1:1 blend of 2-mercaptoethanol (ME) and 2-methyl-imidazoline (MI) shows synergistic effects, delivering higher corrosion inhibition efficiency than either molecule alone in CO2-saturated 3% NaCl.
2
DFT results show the ME-MI (1:1) complex has a lower HOMO-LUMO gap (Egap) and higher-magnitude adsorption energy than individual ME or MI, indicating enhanced reactivity and stronger adsorption.
3
Electron density difference (EDD) plots indicate both ME and MI strongly adsorb on the Fe3C surface, supporting their role as corrosion inhibitors.
4
Experimental corrosion tests in CO2-saturated 3% NaCl confirm DFT-predicted trends: ME outperforms MI individually, and the 1:1 ME-MI blend provides the highest inhibition efficiency.
5
Surface-coverage analysis from DFT indicates ME individually has higher adsorption energy and better surface coverage than MI, implying better inhibition by ME alone despite Egap comparisons.

CO2-induced corrosion of carbon steel in CO2-saturated 3% NaCl solution with adsorbed 2-mercaptoethanol (ME), 2-methyl-imidazoline (MI), and their 1:1 blend on Fe3C surface

Synergistic inhibition effects: adsorption energetics, HOMO–LUMO gap (Egap), electron density redistribution, surface coverage, and corrosion-inhibition efficiency of ME, MI, and ME–MI (1:1) on carbon steel/Fe3C in CO2-saturated brine

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2026-03-06
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Jeremy Moloney
Dharmendr Kumar
Venkata Muralidhar K
Vinay Jain
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