The main objective of this study is to investigate the corrosion inhibition properties of Gardenia aqualla leaf extract on mild steel using weight determination loss method. The corrosion of mild steel was investigated at different concentrations of Gardenia aqualla at temperatures of 303, 313 and 323 K. G. aqualla inhibit corrosion rate of mild steel from 62.4 mm/yr to 6.5 mm/yr, 91.6 mm/yr to 16.6 mm/yr and 113.8 mm/yr to 28.4 mm/yr at 303, 313, and 323 K respectively. The optimum obtained yield in the inhibition efficiency is from 63.8% to 89.5%, 52.5% to 81.9% and 39% to 75% for the various temperatures respectively after an interval of 3 days being in contact in aqueous solution. Langmuir isotherm confirmed that physisorption occurred and it was found that inhibition occurred through adsorption of the constituents present in the leaf of G. aqualla obtained by phytochemical screening.
Published in | American Journal of Applied Chemistry (Volume 6, Issue 1) |
DOI | 10.11648/j.ajac.20180601.11 |
Page(s) | 1-5 |
Creative Commons |
This is an Open Access article, distributed under the terms of the Creative Commons Attribution 4.0 International License (http://creativecommons.org/licenses/by/4.0/), which permits unrestricted use, distribution and reproduction in any medium or format, provided the original work is properly cited. |
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Copyright © The Author(s), 2017. Published by Science Publishing Group |
Mild Steel, Corrosion Inhibition, Gardenia aqualla, Adsorption Mechanism
[1] | Patel NS, Jauhariand S, Mehta GN, Al-Deyab SS, Warad I, Hammouti B. Mild Steel Int J Electrochem Sci. 2013; 8:2 635-2655. www.electrochemsci.org. |
[2] | Rani BEA, Basu BBJ. Int J Corros. 2012; 2012 (i). doi:10.1155/2012/380217. |
[3] | Buchweishaija J. Tanaz J Sci. 2009; 35: 77-92. |
[4] | Dahmani M, Et-Touhami A, Al-Deyab SS, Hammouti B, Bouyanzer A. Int J Electrochem Sci. 2010; 5 (8): 1060-1069. |
[5] | Louis, H., J. Japari, Sadia A., Philip M. and A. Bamanga A. WNOFNS 10 (2017) 95-100. |
[6] | H. Louis, B. I Ita, T. O. Magu, C. R. Okon and N. A. Nzeata-Ibe (2016): African Journal Online. Chem Search Journal 7 (2), 7-12, December, 2016. |
[7] | Shukla SK, Ebenso EE. 2011; 6: 3277-3291. |
[8] | Jackson J. 2014; 86: 17-41. |
[9] | Hutchinson J and Dalziel JM. Flora of West Tropical Africa. Crown Agents for Overseas Government and Administrations, Milbank, London. Part 2, 1963; 1:528pp. |
[10] | Sulaiman SK, Mohd HI, Muskhazli M and Rusea GO. Ethnobotanical survey of medicinal plants used for traditional maternal healthcare in Katsina state, Nigeria, South African Journal of Botany 2015; 97: 165-175pp. |
[11] | Burkill HM. The useful plants of west tropical Africa, 2nd edition. Royal Botanic Gardens, Kew, UK. 1997; 4: 969pp. |
[12] | Njinga NS, Sule MI, Pateh UU, Hassan HS, Usman MA, Bilkisu A, Danja BA and Ache RN. Phytochemical and antimicrobial activity of the stem-bark of Gardenia aqualla Stapf & Hutch (Rubeaceae). 2014:8 (27): 942-946 pp. |
[13] | Muhammad A, Dangoggo SM, Tsafe AI, Itodo AU, and Atiku FA. Proximate, Minerals and Anti-nutritional Factors of Gardenia aqualla (Gaudendutse) Fruit Pulp. Pakistan Journal of Nutrition, 2011; 10: 577-581. |
[14] | Wele M, Kirkman L, Diarra N, Goita Y, Doumbia1M, Traore K and Diallo, D. Antiplasmodial Potential and Phytochemical Screening of Ten Plants Used as Antimalarial in Mali. European Journal of Medicinal Plants2017; 19 (4): 1-9. |
[15] | Length F. 2014; 8 (27): 942-946. doi:10.5897/JMPR2013.5207. |
[16] | Okafor PC, Ebenso EE, Ekpe UJ. Int J Electrochem Sci. 2010; 5 (7): 978-993. |
[17] | Patil DB, Sharma AR.. 2011; 8:358-363. |
[18] | Arukalam IO, Madufor IC, Ogbobe O, Oguzie E. DOI: 10.2174/1876503301406010001. 2014:1-10. |
[19] | Holmgren PK, Holmgren NH and Banner TLC. Index Herbariorum. Part I: The Herbaria of the World [Regnum Veg. 1990; 120]. New York Botanical Garden, New York. |
[20] | Lahhit N, Bouyanzer A, Desjobert J, Hammouti B, Salghi R. Fennel ( Foeniculum Vulgare ). 2011; 29 (2): 127-138. doi:10.4152/pea.201102127. |
[21] | Al-Otaibi MS, Al-Mayouf AM, Khan M, et al. Int J Electrochem Sci. 2013; 5 (3): 847-859. doi:10.1016/j.matchemphys.2008.01.028. |
[22] | Nithya A, Shanthy P, Vijaya N, Rathish RJ. Int. J. Nano. Corr. Sci. Engg. 2 (1) (2015). 2015; 2 (1): 1-11. |
[23] | Odiongenyi AO, Odoemelam SA, Eddy NO. Portugaliae Electrochimica Acta. 2009; 27 (1): 33-45. |
[24] | Al-senani GM. Int. J. Electrochem. Sci., 11 (2016) 291 - 302 2016; 11: 291-302. |
APA Style
Opara Chinonso Ivan, Louis Hitler, Japari Joseph, Oyebanji Oyetola, Akakuru Ozioma Udochukwu, et al. (2017). Phytochemical Screening and Corrosion Inhibition of the Ethanolic Leave Extracts of Gardenia aqualla Stapf & Hutch In 1M H2SO4 Acid Solution. American Journal of Applied Chemistry, 6(1), 1-5. https://doi.org/10.11648/j.ajac.20180601.11
ACS Style
Opara Chinonso Ivan; Louis Hitler; Japari Joseph; Oyebanji Oyetola; Akakuru Ozioma Udochukwu, et al. Phytochemical Screening and Corrosion Inhibition of the Ethanolic Leave Extracts of Gardenia aqualla Stapf & Hutch In 1M H2SO4 Acid Solution. Am. J. Appl. Chem. 2017, 6(1), 1-5. doi: 10.11648/j.ajac.20180601.11
AMA Style
Opara Chinonso Ivan, Louis Hitler, Japari Joseph, Oyebanji Oyetola, Akakuru Ozioma Udochukwu, et al. Phytochemical Screening and Corrosion Inhibition of the Ethanolic Leave Extracts of Gardenia aqualla Stapf & Hutch In 1M H2SO4 Acid Solution. Am J Appl Chem. 2017;6(1):1-5. doi: 10.11648/j.ajac.20180601.11
@article{10.11648/j.ajac.20180601.11, author = {Opara Chinonso Ivan and Louis Hitler and Japari Joseph and Oyebanji Oyetola and Akakuru Ozioma Udochukwu and Tonny Nyong’a Maraga and Pigweh Amos Isa}, title = {Phytochemical Screening and Corrosion Inhibition of the Ethanolic Leave Extracts of Gardenia aqualla Stapf & Hutch In 1M H2SO4 Acid Solution}, journal = {American Journal of Applied Chemistry}, volume = {6}, number = {1}, pages = {1-5}, doi = {10.11648/j.ajac.20180601.11}, url = {https://doi.org/10.11648/j.ajac.20180601.11}, eprint = {https://article.sciencepublishinggroup.com/pdf/10.11648.j.ajac.20180601.11}, abstract = {The main objective of this study is to investigate the corrosion inhibition properties of Gardenia aqualla leaf extract on mild steel using weight determination loss method. The corrosion of mild steel was investigated at different concentrations of Gardenia aqualla at temperatures of 303, 313 and 323 K. G. aqualla inhibit corrosion rate of mild steel from 62.4 mm/yr to 6.5 mm/yr, 91.6 mm/yr to 16.6 mm/yr and 113.8 mm/yr to 28.4 mm/yr at 303, 313, and 323 K respectively. The optimum obtained yield in the inhibition efficiency is from 63.8% to 89.5%, 52.5% to 81.9% and 39% to 75% for the various temperatures respectively after an interval of 3 days being in contact in aqueous solution. Langmuir isotherm confirmed that physisorption occurred and it was found that inhibition occurred through adsorption of the constituents present in the leaf of G. aqualla obtained by phytochemical screening.}, year = {2017} }
TY - JOUR T1 - Phytochemical Screening and Corrosion Inhibition of the Ethanolic Leave Extracts of Gardenia aqualla Stapf & Hutch In 1M H2SO4 Acid Solution AU - Opara Chinonso Ivan AU - Louis Hitler AU - Japari Joseph AU - Oyebanji Oyetola AU - Akakuru Ozioma Udochukwu AU - Tonny Nyong’a Maraga AU - Pigweh Amos Isa Y1 - 2017/12/14 PY - 2017 N1 - https://doi.org/10.11648/j.ajac.20180601.11 DO - 10.11648/j.ajac.20180601.11 T2 - American Journal of Applied Chemistry JF - American Journal of Applied Chemistry JO - American Journal of Applied Chemistry SP - 1 EP - 5 PB - Science Publishing Group SN - 2330-8745 UR - https://doi.org/10.11648/j.ajac.20180601.11 AB - The main objective of this study is to investigate the corrosion inhibition properties of Gardenia aqualla leaf extract on mild steel using weight determination loss method. The corrosion of mild steel was investigated at different concentrations of Gardenia aqualla at temperatures of 303, 313 and 323 K. G. aqualla inhibit corrosion rate of mild steel from 62.4 mm/yr to 6.5 mm/yr, 91.6 mm/yr to 16.6 mm/yr and 113.8 mm/yr to 28.4 mm/yr at 303, 313, and 323 K respectively. The optimum obtained yield in the inhibition efficiency is from 63.8% to 89.5%, 52.5% to 81.9% and 39% to 75% for the various temperatures respectively after an interval of 3 days being in contact in aqueous solution. Langmuir isotherm confirmed that physisorption occurred and it was found that inhibition occurred through adsorption of the constituents present in the leaf of G. aqualla obtained by phytochemical screening. VL - 6 IS - 1 ER -