Inhibition of Mild Steel Corrosion by 4-benzyl-1-(4-oxo-4-phenylbutanoyl)thiosemicarbazide: Gravimetrical, Adsorption and Theoretical Studies
Abstract
:1. Introduction
2. Materials and Methods
2.1. Corrosive Media
2.2. Weight Loss Investigations
2.3. Effect of Temperature
2.4. Computational Details
3. Results and Discussion
3.1. Weight Loss Techniques
3.2. Effect of Immersion Time
3.3. Effect of Temperature
3.4. Adsorption Isotherm
3.5. Theoretical Calculation
3.6. Mulliken Charges
4. Conclusions
- The organic compound 4-benzyl-1-(4-oxo-4-phenylbutanoyl)thiosemicarbazide (BOT) was studied as an inhibitor for corrosion of mild steel in 1 M environment.
- The experimental findings achieved point to the result that BOT efficiently controls or retards the mild steel corrosion in 1.0 M hydrochloric acid solution.
- With increasing BOT concentration, inhibitive effectiveness increases and the rate of corrosion decreases in HCl solution.
- The inhibition efficiency decreases slightly with the increase in the temperature in HCl solution.
- The process of corrosion was controlled by the adsorption of the BOT molecules on the metallic surface.
- Adsorption of BOT molecules on the examined metallic surface from acidic solution follow the Langmuir isotherms model.
- The adsorption of BOT molecules on the surface of mild steel involving both chemisorption and physisorption.
- The DFT theoretical results on BOT were investigated. The calculation results demonstrate the tested inhibitor is considered a promising and important corrosion inhibitor compared to other published corrosion inhibitors. The quantum chemical parameters, including frontier molecular orbitals (HOMO and LUMO), dipole moment (µ), absolute electronegativity (χ), global hardness (η), softness (σ) and the fraction of electrons transferred (∆N), have been determined at the B3LYP level of theory with 6-31G(d,p) basis set. The obtained parameters support the validity of the quantum chemical approach used in this study. According to quantum chemical calculations, the examined inhibitor has the strongest affinity to adsorb onto the metal surface compared to other published corrosion inhibitors.
- The synthesized inhibitor is believed to exhibit good protection against corrosion in a hydrochloric acid environment. The major disadvantage is the time dependence of percent inhibition efficiency (%IE) of the tested inhibitor.
Author Contributions
Funding
Data Availability Statement
Acknowledgments
Conflicts of Interest
References
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EHOMO (eV) | ELUMO (eV) | ΔE = (EHOMO − ELUMO) | η | σ | χ | μ (D) | IE (%) * | |
---|---|---|---|---|---|---|---|---|
−7.284 | −4.676 | −2.608 | 1.304 | 0.7668 | 5.98 | 0.3911 | 7.0311 | 96.2 |
Atom | Charge | Atom | Charge | Atom | Charge | Atom | Charge |
---|---|---|---|---|---|---|---|
N(1) | −0.524240 | C(7) | −0.495498 | C(13) | −0.184849 | C(19) | −0.000172 |
N(2) | −0.503825 | C(8) | −0.479102 | C(14) | −0.174124 | C(20) | −0.182332 |
C(3) | 0.244554 | C(9) | 0.447670 | C(15) | −0.180262 | C(21) | −0.180628 |
S(4) | −0.050101 | O(10) | −0.486797 | C(16) | −0.205481 | C(22) | −0.187090 |
N(5) | −0.699234 | C(11) | −0.092317 | O(17) | −0.452130 | C(23) | −0.177991 |
C(6) | 0.668898 | C(12) | −0.147503 | C(18) | −0.209222 | C(24) | −0.202524 |
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Alamiery, A.A.; Wan Isahak, W.N.R.; Takriff, M.S. Inhibition of Mild Steel Corrosion by 4-benzyl-1-(4-oxo-4-phenylbutanoyl)thiosemicarbazide: Gravimetrical, Adsorption and Theoretical Studies. Lubricants 2021, 9, 93. https://doi.org/10.3390/lubricants9090093
Alamiery AA, Wan Isahak WNR, Takriff MS. Inhibition of Mild Steel Corrosion by 4-benzyl-1-(4-oxo-4-phenylbutanoyl)thiosemicarbazide: Gravimetrical, Adsorption and Theoretical Studies. Lubricants. 2021; 9(9):93. https://doi.org/10.3390/lubricants9090093
Chicago/Turabian StyleAlamiery, Ahmed A., Wan Nor Roslam Wan Isahak, and Mohd S. Takriff. 2021. "Inhibition of Mild Steel Corrosion by 4-benzyl-1-(4-oxo-4-phenylbutanoyl)thiosemicarbazide: Gravimetrical, Adsorption and Theoretical Studies" Lubricants 9, no. 9: 93. https://doi.org/10.3390/lubricants9090093
APA StyleAlamiery, A. A., Wan Isahak, W. N. R., & Takriff, M. S. (2021). Inhibition of Mild Steel Corrosion by 4-benzyl-1-(4-oxo-4-phenylbutanoyl)thiosemicarbazide: Gravimetrical, Adsorption and Theoretical Studies. Lubricants, 9(9), 93. https://doi.org/10.3390/lubricants9090093