176
Views
8
CrossRef citations to date
0
Altmetric
Original Articles

Natural triterpenoids of Ganoderma lucidum as new, green, and effective corrosion inhibitor for steel in acidic medium: characterization, experimental and theoretical investigations

, , , , , , & show all
Pages 2708-2731 | Received 21 Dec 2021, Accepted 10 Feb 2022, Published online: 21 Feb 2022

References

  • de Damborenea J, Conde A, Arenas MA. 3 – Corrosion inhibition with rare earth metal compounds in aqueous solutions. In: Forsyth M, Hinton B, editors. Rare Earth-Based corros inhib. Woodhead Publishing; 2014. p. 84–116.
  • Noor EA. The inhibition of mild steel corrosion in phosphoric acid solutions by some N-heterocyclic compounds in the salt form. Corros Sci. 2005;47(1):33–55.
  • Ameer MA, Fekry AM. Inhibition effect of newly synthesized heterocyclic organic molecules on corrosion of steel in alkaline medium containing chloride. Int J Hydrogen Energy. 2010;35(20):11387–11396.
  • Ameer MA, Khamis E, Al-Senani G. Effect of temperature on stability of adsorbed inhibitors on steel in phosphoric acid solution. J Appl Electrochem. 2002;32(2):149–156.
  • Khamis E, Ameer MA, AlAndis NM, et al. Effect of thiosemicarbazones on corrosion of steel in phosphoric acid produced by wet process. CORROSION. 2000;56(2):127–138.
  • Khamis E, El-Ashry ESH, Ibrahim AK. Synergistic action of vinyl triphenyl phosphonium bromide with various anions on corrosion of steel. Br Corros J. 2000;35(2):150–154.
  • Guo L, Zhang R, Tan B, et al. Locust bean gum as a green and novel corrosion inhibitor for Q235 steel in 0.5 M H2SO4 medium. J Mol Liq. 2020;310:113239.
  • Guo L, Tan J, Kaya S, et al. Multidimensional insights into the corrosion inhibition of 3,3-dithiodipropionic acid on Q235 steel in H2SO4 medium: a combined experimental and in silico investigation. J Colloid Interface Sci. 2020;570:116–124.
  • Tan B, Zhang S, Qiang Y, et al. Experimental and theoretical studies on the inhibition properties of three diphenyl disulfide derivatives on copper corrosion in acid medium. J Mol Liq. 2020;298:111975.
  • Berrissoul A, Ouarhach A, Benhiba F, et al. Evaluation of Lavandula mairei extract as green inhibitor for mild steel corrosion in 1 M HCl solution. Experimental and theoretical approach. J Mol Liq. 2020;313:113493.
  • Asadi N, Ramezanzadeh M, Bahlakeh G, et al. Utilizing lemon balm extract as an effective green corrosion inhibitor for mild steel in 1M HCl solution: a detailed experimental, molecular dynamics, monte carlo and quantum mechanics study. J Taiwan Inst Chem Eng. 2019;95:252–272.
  • Alibakhshi E, Ramezanzadeh M, Haddadi SA, et al. Persian liquorice extract as a highly efficient sustainable corrosion inhibitor for mild steel in sodium chloride solution. J Clean Prod. 2019;210:660–672.
  • Njoku DI, Njoku CN, Lgaz H, et al. Corrosion protection of Q235 steel in acidic-chloride media using seed extracts of Piper guineense. J Mol Liq. 2021;330:115619.
  • Salleh SZ, Yusoff AH, Zakaria SK, et al. Plant extracts as green corrosion inhibitor for ferrous metal alloys: a review. J Clean Prod. 2021;304:127030.
  • Liu Y, Song Z, Wang W, et al. Effect of ginger extract as green inhibitor on chloride-induced corrosion of carbon steel in simulated concrete pore solutions. J Clean Prod. 2019;214:298–307.
  • Daniel EF, Ebeagwu MC, Okafor PC, et al. Exploring the efficacy of phytoconstituents from vernonia amygdalina on mild steel protection in acid environment: Combined experimental and theoretical study. J Bio- Tribo-Corrosion. 2021;7:126.
  • Kandias D, Bundjali B, Wahyuningrum D. Curcuminoid compounds isolated from curcuma domestica val. as corrosion inhibitor towards carbon steel in 1% NaCl solution. Sains Malaysiana. 2011;40:1013–1018.
  • Emori W, Bassey VM, Louis H, et al. Anticorrosion and dispersive adsorption studies of natural andrographolide on carbon steel in acid-chloride environments. Bioelectrochemistry. 2021;141:107840.
  • Emori W, Zhang R-H, Okafor PC, et al. Adsorption and corrosion inhibition performance of multi-phytoconstituents from dioscorea septemloba on carbon steel in acidic media: characterization, experimental and theoretical studies. Colloids Surfaces A Physicochem Eng Asp. 2020;590:124534.
  • Prabakaran M, Kim S-H, Mugila N, et al. Aster koraiensis as nontoxic corrosion inhibitor for mild steel in sulfuric acid. J Ind Eng Chem. 2017;52:235–242.
  • Liao LL, Mo S, Luo HQ, et al. Longan seed and peel as environmentally friendly corrosion inhibitor for mild steel in acid solution: Experimental and theoretical studies. J Colloid Interface Sci. 2017;499:110–119.
  • He T, Emori W, Zhang R-H, et al. Detailed characterization of phellodendron chinense schneid and its application in the corrosion inhibition of carbon steel in acidic media. Bioelectrochemistry. 2019;130:107332.
  • Keypour S, Rafati H, Riahi H, et al. Qualitative analysis of ganoderic acids in Ganoderma lucidum from Iran and China by RP-HPLC and electrospray ionisation-mass spectrometry (ESI-MS). Food Chem. 2010;119(4):1704–1708.
  • Bao X-F, Wang X-S, Dong Q, et al. Structural features of immunologically active polysaccharides from Ganoderma lucidum. Phytochemistry. 2002;59(2):175–181.
  • Paterson RRM. Ganoderma – a therapeutic fungal biofactory. Phytochemistry. 2006;67(18):1985–2001.
  • Joseph S, Sabulal B, George V, et al. Antioxidative and antiinflammatory activities of the chloroform extract of Ganoderma lucidum found in South India. Sci Pharm. 2009;77(1):111–122.
  • Saltarelli R, Ceccaroli P, Iotti M, et al. Biochemical characterisation and antioxidant activity of mycelium of Ganoderma lucidum from Central Italy. Food Chem. 2009;116(1):143–151.
  • de Mattos-Shipley KMJ, Ford KL, Alberti F, et al. The good, the bad and the tasty: the many roles of mushrooms. Stud Mycol. 2016;85:125–157.
  • Saltarelli R, Palma F, Gioacchini AM, et al. Phytochemical composition, antioxidant and antiproliferative activities and effects on nuclear DNA of ethanolic extract from an Italian mycelial isolate of Ganoderma lucidum. J Ethnopharmacol. 2019;231:464–473.
  • Brakhage AA, Schroeckh V. Fungal secondary metabolites – strategies to activate silent gene clusters. Fungal Genet Biol. 2011;48(1):15–22.
  • Wan-Mohtar W, Kadir SA, Saari N. The morphology of Ganoderma lucidum mycelium in a repeated-batch fermentation for exopolysaccharide production. Biotechnol Rep. 2016;11:2–11.
  • Zhao C, Zhang C, Xing Z, et al. Pharmacological effects of natural ganoderma and its extracts on neurological diseases: a comprehensive review. Int J Biol Macromol. 2019;121:1160–1178.
  • Cör D, Knez Ž, Knez Hrnčič M. Antitumour, antimicrobial, antioxidant and antiacetylcholinesterase effect of Ganoderma Lucidum terpenoids and polysaccharides: a review. Molecules. 2018;23(3):649.
  • Rashad FM, Kattan MHE, Fathy HM, et al. Recycling of agro-wastes for Ganoderma lucidum mushroom production and ganoderma post mushroom substrate as soil amendment. Waste Manag. 2019;88:147–159.
  • Chen B, Tian J, Zhang J, et al. Triterpenes and meroterpenes from Ganoderma lucidum with inhibitory activity against HMGs reductase, aldose reductase and α-glucosidase. Fitoterapia. 2017;120:6–16.
  • Wang C-H, Hsieh S-C, Wang H-J, et al. Concentration variation and molecular characteristics of soluble (1,3;1,6)-β-d-Glucans in submerged cultivation products of Ganoderma lucidum mycelium. J Agric Food Chem. 2014;62(3):634–641.
  • Ye L, Li J, Zhang J, et al. NMR characterization for polysaccharide moiety of a glycopeptide. Fitoterapia. 2010;81(2):93–96.
  • Zhao Z-Z, Chen H-P, Feng T, et al. Lucidimine A-D, four new alkaloids from the fruiting bodies of Ganoderma lucidum. J Asian Nat Prod Res. 2015;17(12):1160–1165.
  • Lu S-Y, Peng X-R, Dong J-R, et al. Aromatic constituents from Ganoderma lucidum and their neuroprotective and anti-inflammatory activities. Fitoterapia. 2019;134:58–64.
  • Umoren SA, Ebenso EE, Ogbobe O. Synergistic effect of halide ions and polyethylene glycol on the corrosion inhibition of aluminium in alkaline medium. J Appl Polym Sci. 2009;113(6):3533–3543.
  • Umoren SA, Solomon MM, Udosoro II, et al. Synergistic and antagonistic effects between halide ions and carboxymethyl cellulose for the corrosion inhibition of mild steel in sulphuric acid solution. Cellulose. 2010;17(3):635–648.
  • Lebrini M, Robert F, Lecante A, et al. Corrosion inhibition of C38 steel in 1M hydrochloric acid medium by alkaloids extract from oxandra asbeckii plant. Corros Sci. 2011;53(2):687–695.
  • Raja PB, Qureshi AK, Rahim AA, et al. Neolamarckia cadamba alkaloids as eco-friendly corrosion inhibitors for mild steel in 1M HCl media. Corros Sci. 2013;69:292–301.
  • Arukalam IO, Madufor IC, Ogbobe O, et al. Hydroxypropyl methylcellulose as a polymeric corrosion inhibitor for aluminium. Pigment Resin Technol. 2014;43(3):151–158.
  • Faustin M, Maciuk A, Salvin P, et al. Corrosion inhibition of C38 steel by alkaloids extract of geissospermum laeve in 1M hydrochloric acid: electrochemical and phytochemical studies. Corros Sci. 2015;92:287–300.
  • Umoren SA, Eduok UM. Application of carbohydrate polymers as corrosion inhibitors for metal substrates in different media: a review. Carbohydr Polym. 2016;140:314–341.
  • Popoola LT. Progress on pharmaceutical drugs, plant extracts and ionic liquids as corrosion inhibitors. Heliyon. 2019;5(2):e01143.
  • ASTM G1-90. Standard practice for preparing. Cleaning, and evaluating corrosion test specimens. ASTM Int. West Conshohocken, PA; 1999.
  • Emori W, Jiang SL, Duan DL, et al. Corrosion behavior of carbon steel in amine-based CO2 capture system: effect of sodium sulfate and sodium sulfite contaminants. Mater Corros. 2017;68(6):674–682.
  • Emori W, Jiang SL, Duan DL, et al. Effects of sodium thiosulfate and sodium sulfide on the corrosion behavior of carbon steel in an MDEA-Based CO < inf > 2</inf > capture process. J Mater Eng Perform. 2017;26:335–342.
  • Dutta A, Saha SK, Adhikari U, et al. Effect of substitution on corrosion inhibition properties of 2-(substituted phenyl) benzimidazole derivatives on mild steel in 1 M HCl solution: a combined experimental and theoretical approach. Corros Sci. 2017;123:256–266.
  • Saha SK, Ghosh P, Hens A, et al. Density functional theory and molecular dynamics simulation study on corrosion inhibition performance of mild steel by mercapto-quinoline Schiff base corrosion inhibitor. Phys E Low-Dimensional Syst Nanostructures. 2015;66:332–341.
  • Olasunkanmi LO, Obot IB, Kabanda MM, et al. Some quinoxalin-6-yl derivatives as corrosion inhibitors for mild steel in hydrochloric acid: Experimental and theoretical studies. J Phys Chem C. 2015;119(28):16004–16019.
  • Yang M, Wang X, Guan S, et al. Analysis of triterpenoids in Ganoderma lucidum using liquid chromatography coupled with electrospray ionization mass spectrometry. J Am Soc Mass Spectrom. 2007;18(5):927–939.
  • Cheng C-R, Yang M, Wu Z-Y, et al. Fragmentation pathways of oxygenated tetracyclic triterpenoids and their application in the qualitative analysis of Ganoderma lucidum by multistage tandem mass spectrometry. Rapid Commun Mass Spectrom. 2011;25(9):1323–1335.
  • Abdel-Gaber AM, Khamis E, Abo-ElDahab H, et al. Inhibition of aluminium corrosion in alkaline solutions using natural compound. Mater Chem Phys. 2008;109(2–3):297–305.
  • Zhou X, Yang H, Wang F. Investigation on the inhibition behavior of a pentaerythritol glycoside for carbon steel in 3.5% NaCl saturated Ca(OH)2 solution. Corros Sci. 2012;54:193–200.
  • de Souza FS, Spinelli A. Caffeic acid as a green corrosion inhibitor for mild steel. Corros Sci. 2009;51(3):642–649.
  • Mobin M, Rizvi M. Polysaccharide from plantago as a green corrosion inhibitor for carbon steel in 1M HCl solution. Carbohydr Polym. 2017;160:172–183.
  • Cole IS, Marney D. The science of pipe corrosion: a review of the literature on the corrosion of ferrous metals in soils. Corros Sci. 2012;56:5–16.
  • Deng S, Li X. Inhibition by jasminum nudiflorum lindl. leaves extract of the corrosion of aluminium in HCl solution. Corros Sci. 2012;64:253–262.
  • Wang Q, Tan B, Bao H, et al. Evaluation of ficus tikoua leaves extract as an eco-friendly corrosion inhibitor for carbon steel in HCl media. Bioelectrochemistry. 2019;128:49–55.
  • Qiang Y, Zhang S, Guo L, et al. Experimental and theoretical studies of four allyl imidazolium-based ionic liquids as green inhibitors for copper corrosion in sulfuric acid. Corros Sci. 2017;119:68–78.
  • Emori W, Jiang SL, Zheng YG, et al. Influence of interface-related parameters on some heat stable salts in the corrosion studies of carbon steel for post-combustion CO2 capture. Materialwiss Werkstofftech. 2021;52(11):1185–1200.
  • Okafor PC, Apebende EA. Corrosion inhibition characteristics of thymus vulgaris, xylopia aethiopica and zingiber officinale extracts on mild steel in H2SO4 solutions. PRT. 2014;43(6):357–364.
  • Odewunmi NA, Umoren SA, Gasem ZM. Utilization of watermelon rind extract as a green corrosion inhibitor for mild steel in acidic media. J Ind Eng Chem. 2015;21:239–247.
  • Obot IB, Gasem ZM. Theoretical evaluation of corrosion inhibition performance of some pyrazine derivatives. Corros Sci. 2014;83:359–366.
  • Njoku DI, Li Y, Lgaz H, et al. Dispersive adsorption of xylopia aethiopica constituents on carbon steel in acid-chloride medium: a combined experimental and theoretical approach. J Mol Liq. 2018;249:371–388.
  • Tantawy AH, Soliman KA, Abd El-Lateef HM. Novel synthesized cationic surfactants based on natural piper nigrum as sustainable-green inhibitors for steel pipeline corrosion in CO2-3.5%NaCl: DFT, monte Carlo simulations and experimental approaches. J Clean Prod. 2020;250:119510.
  • Cao Z, Tang Y, Cang H, et al. Novel benzimidazole derivatives as corrosion inhibitors of mild steel in the acidic media. Part II: theoretical studies. Corros Sci. 2014;83:292–298.
  • Saha SK, Dutta A, Ghosh P, et al. Adsorption and corrosion inhibition effect of Schiff base molecules on the mild steel surface in 1 M HCl medium: a combined experimental and theoretical approach. Phys Chem Chem Phys. 2015;17(8):5679–5690.

Reprints and Corporate Permissions

Please note: Selecting permissions does not provide access to the full text of the article, please see our help page How do I view content?

To request a reprint or corporate permissions for this article, please click on the relevant link below:

Academic Permissions

Please note: Selecting permissions does not provide access to the full text of the article, please see our help page How do I view content?

Obtain permissions instantly via Rightslink by clicking on the button below:

If you are unable to obtain permissions via Rightslink, please complete and submit this Permissions form. For more information, please visit our Permissions help page.