[1]

Trivedi HK, Patel MC. 2011. A stability indicating method for the determination of the antioxidant sodium bisulfite in pharmaceutical formulation by RP-HPLC technique. Scientia Pharmaceutica 79:909−20

doi: 10.3797/scipharm.1104-13
[2]

Carocho M, Barreiro MF, Morales P, Ferreira ICFR. 2014. Adding molecules to food, pros and cons: a review on synthetic and natural food additives. Comprehensive Reviews in Food Science and Food Safety 13:377−399

doi: 10.1111/1541-4337.12065
[3]

Ahmadi F, Lee YH, Lee WH, Oh YK, Park KK, et al. 2018. Preservation of fruit and vegetable discards with sodium metabisulfite. Journal of Environmental Management 224:113−21

doi: 10.1016/j.jenvman.2018.07.044
[4]

Vieira HH, Toledo JC Jr, Catelan A, Gouveia THN, Aguiar FHB, et al. 2018. Effect of sodium metabisulfite gel on the bond strength of dentin of bleached teeth. European Journal of Dentistry 12:163−70

doi: 10.4103/ejd.ejd_165_17
[5]

D’Amore T, Di Taranto A, Berardi G, Vita V, Marchesani G, et al. 2020. Sulfites in meat: occurrence, activity, toxicity, regulation, and detection. a comprehensive review. Comprehensive Reviews in Food Science and Food Safety 19:2701−20

doi: 10.1111/1541-4337.12607
[6]

Carrabs G, Smaldone G, Carosielli L, Girasole M, Iammarino M, et al. 2017. Detection of sulfites in fresh meat preparation commercialised at retail in Lazio region. Italian Journal of Food Safety 6:93−95

doi: 10.4081/ijfs.2017.6482
[7]

Baker MT, Gregerson MS, Martin SM, Buettner GR. 2023. Free radical and drug oxidation products in an intensive care unit sedative: propofol with sulfite. Critical Care Medicine 31:787−92

doi: 10.1097/01.CCM.0000053560.05156.73
[8]

Alimohammadi A, Moosavy MH, Amin Doustvandi M, Baradaran B, Amini M, et al. 2021. Sodium metabisulphite as a cytotoxic food additive induces apoptosis in HFFF2 cells. Food Chemistry 358:129910

doi: 10.1016/j.foodchem.2021.129910
[9]

Zohra EF, Yasmina BM, Samira M, Zohra SF, Soraya D, et al. 2017. Effect of sodium metabisulfite on lipid peroxidation and enzyme activities in adult rat stomach and spleen. South Asian Journal of Experimental Biology 7:1−8

doi: 10.38150/sajeb.7(1).p01-08
[10]

Ercan S, Basaranlar G, Gungor NE, Kencebay C, Sahin P, et al. 2013. Ghrelin inhibits sodium metabisulfite induced oxidative stress and apoptosis in rat gastric mucosa. Food and Chemical Toxicology 56:154−61

doi: 10.1016/j.fct.2013.02.019
[11]

Shojaee S, Nokhodchi A, Cumming I. 2014. The role of filler and sodium metabisulphite on drug release from aged polyox tablets. Drug Development and Industrial Pharmacy 40:1451−58

doi: 10.3109/03639045.2013.828224
[12]

Alahmadi M, Alsaedi WH, Mohamed WS, Hassan HMA, Ezzeldien M, et al. 2023. Development of Bi2O3/MoSe2 mixed nanostructures for photocatalytic degradation of methylene blue dye. Journal of Taibah University of Science 17:2161333

doi: 10.1080/16583655.2022.2161333
[13]

Sar P, Saha B. 2020. Potential application of Micellar nanoreactor for electron transfer reactions mediated by a variety of oxidants: a review. Advances in Colloid and Interface Science 284:102241

doi: 10.1016/j.cis.2020.102241
[14]

Rakshit A, Chowdhury S, Acharjee A, Mahali K, Saha R, et al. 2023. A synergistic combination of SDS and TX-100 for the catalytic oxidation of an aromatic alcohol in aqueous media. Research on Chemical Intermediates 49:4025−40

doi: 10.1007/s11164-023-05061-z
[15]

Chowdhury B, Sar P, Kumar D, Saha B. 2022. Advancement of Cu(III) and Fe(III) directed oxidative transformations: recent impact of aqueous micellar environment. Journal of Molecular Liquids 347:117993

doi: 10.1016/j.molliq.2021.117993
[16]

Laguta AN, Eltsov SV, Mchedlov-Petrossyan NO. 2019. Micellar rate effects on the kinetics of nitrophenol violet anion reaction with HO ion: comparing Piszkiewicz's, Berezin's, and Pseudophase Ion-exchange models. Journal of Molecular Liquids 277:70−77

doi: 10.1016/j.molliq.2018.12.012
[17]

Nkole IU, Idris SO, Abdulkadir I, Onu AD. 2022. Effect of surfactant micellization on the oxidation of mercaptobenzothiazole by bioinorganic molybdenum complex. Results in Chemistry 4:100616

doi: 10.1016/j.rechem.2022.100616
[18]

Nkole IU, Idris SO, Onu AD, Abdulkadir I. 2022. The study of Piszkiewicz's and Berezin's models on the redox reaction of allylthiourea and bis-(2-pyridinealdoximato)dioxomolybdate(IV) complex in an aqueous acidic medium. Beni-Suef University Journal of Basic and Applied Sciences 11:68

doi: 10.1186/s43088-022-00249-5
[19]

Srivastava A, Srivastava N, Tiwari D, Nayak R, Naik RM. 2024. Role of surfactants on Fe2+ mediated oxidative decolorization of Acid Red-13 by peroxydisulfate. Journal of Dispersion Science and Technology

doi: 10.1080/01932691.2024.2348495
[20]

Srivastava A, Dohare RK, Srivastava N, Singh R. 2025. Cu(II) mediated oxidation of L-phenylalanine with chromic acid in micellar medium: a kinetic and mechanistic approach. Main Group Chemistry 24:24−36

doi: 10.1177/10241221241291408
[21]

Srivastava A, Goswami MK, Tiwari D, Srivastava N, Srivastava K. 2023. Rate enhancement of Os(VIII) catalyzed L-phenylalanine oxidation by hexacyanoferrate(III) by CTAB micellar medium: a kinetic study. Monatshefte Für Chemie 154:1243−51

doi: 10.1007/s00706-023-03124-w
[22]

Srivastava A, Goswami MK, Singh R, Srivastava N. 2024. Os(VIII) accelerated oxidation of L-leucine by hexacyanoferrate(III) in CTAB micellar medium. Journal of Dispersion Science and Technology 45:2240−48

doi: 10.1080/01932691.2023.2263543
[23]

Srivastava A, Goswami MK, Dohare RK, Srivastava N, Srivastava K. 2023. Effect of cationic surfactant on Ru(III) catalyzed L-glutamic acid oxidation by hexacyanoferrate(III). International Journal of Chemical Kinetics 55:431−40

doi: 10.1002/kin.21646
[24]

Srivastava A, Srivastava N, Dohare RK. 2025. Kinetic and mechanistic investigation of L-phenylalanine oxidation by alkaline Cu(III) periodate in CPC micellar medium. Journal of Physical Organic Chemistry 38:e4669

doi: 10.1002/poc.4669
[25]

Srivastava A, Srivastava N, Srivastava K, Singh R. 2023. Rate enhancement of Cu(II) catalyzed L-glutamic acid oxidation by hexacyanoferrate(III) via micelle encapsulation. Russian Journal of Physical Chemistry A 97:3249−58

doi: 10.1134/S0036024424030026
[26]

Williams RJP, Fraústo da Silva JJR. 2002. The involvement of molybdenum in life. Biochemical and Biophysical Research Communications 292:293−99

doi: 10.1006/bbrc.2002.6518
[27]

Konidaris KF, Raptopoulou CP, Psycharis V, Perlepes SP, Manessi-Zoupa EM, et al. 2010. Use of the 2-pyridinealdoxime/N,N'-donor ligand combination in cobalt(III) chemistry: synthesis and characterization of two cationic mononuclear cobalt(III) complexes. Bioinorganic Chemistry and Applications 7:159656

doi: 10.1155/2010/159656
[28]

Arthur DE, Nkole IU, Osunkwo CR. 2021. Electron transfer reaction of tris- (1,10-phenanthroline)cobalt(III) complex and iodide ion in an aqueous acidic medium. Chemistry Africa 4:63−69

doi: 10.1007/s42250-020-00201-z
[29]

Umoru PE, Nkole IU, Ezeh TT. 2024. Degradation of indigo carmine dye with peroxydisulphate ion in aqueous sulphuric acid phase: kinetic study. International Journal of Chemical Kinetics 56:339

doi: 10.1002/kin.21710
[30]

Nkole IU, Idris SO, Abdulkadir I, Onu AD. 2024. Oxidation of aspartic acid with molybdenum-oxime-ligand framework in acidified-aqua and interfacial active media: Menger-Portnoy kinetic model. Inorganic Chemistry Communications 161:111979

doi: 10.1016/j.inoche.2023.111979
[31]

Adetoro A, Idris SO, Onu AD, Okibe FG. 2018. Electron transfer reaction of glutamic acid and synthesized bis-(ethylenediamine)succinimidatocobalt(III) dinitrate dihydrate in aqueous hydrochloric acid medium. FUW Trend in Science and Technology Journal 3:246−251

[32]

Dennis CR, Van Zyl GJ, Fourie E, Basson SS, Swarts JC. 2021. A kinetic study of the oxidation of the tetrakisoxalatouranate(IV) ion by the hexacyanoferrate(III) ion in an oxalate buffer medium. Reaction Kinetics, Mechanisms and Catalysis 132:599−615

doi: 10.1007/s11144-021-01938-5
[33]

Idris SO, Suleiman JO, Iyun JF, Osunlaja AA. 2015. Reduction of 3,7-bis(dimethylamino)phenazothionium chloride by benzenethiol in aqueous nitric acid medium: a mechanistic approach. American Chemical Societal Journal 5:313−21

doi: 10.9734/acsj/2015/11703
[34]

Kumagai Y, Barreiro Fidalgo A, Jonsson M. 2019. Impact of stoichiometry on the mechanism and kinetics of oxidative dissolution of UO2 induced by H2O2 and γ-irradiation. The Journal of Physical Chemistry C 123:9919−25

doi: 10.1021/acs.jpcc.9b00862
[35]

Osunkwo CR, Nkole IU, Onu AD, Idris SO. 2018. Electron transfer reaction of tris-(1,10-phenanthroline)cobalt(III) complex [Co(phen)3]3+ and thiosulphate ion (S2O32−) in an aqueous acidic medium. International Journal of Advance Chemistry 6:121−26

doi: 10.14419/ijac.v6i1.11326
[36]

Nkole IU, Idris SO, Abdulkadir I, Onu AD. 2023. Cationic surfactant-based catalysis on the oxidation of glutamic acid by bis-(2-pyridinealdoximato)dioxomolydate(IV) complex. Catalysis Letters 153:3581−90

doi: 10.1007/s10562-022-04187-w
[37]

Onu AD, Iyun JF, Idris SO. 2015. Kinetics and stoichiometry of the reduction of hydrogen peroxide by an aminocarboxylactocobaltate(II) complex in aqueous medium. Open Journal of Inorganic Chemistry 5:75−82

doi: 10.4236/ojic.2015.54009
[38]

Lakk-Bogáth D, Kripli B, Meena BI, Speier G, Kaizer J. 2019. Catalytic and stoichiometric CH oxidation of benzylalcohols and hydrocarbons mediated by nonheme oxoiron(IV) complex with chiral tetrapyridyl ligand. Inorganic Chemistry Communications 104:165−170

doi: 10.1016/j.inoche.2019.04.008
[39]

Asghar BH, Fawzy A. 2016. Kinetic, mechanistic, and spectroscopic studies of permanganate oxidation of azinylformamidines in acidic medium, with autocatalytic behavior of manganese(II). Journal of Saudi Chemical Society 20:561−569

doi: 10.1016/j.jscs.2014.12.001
[40]

Fawzy A. 2016. Kinetic and mechanistic aspects of oxidation of aminotriazole formamidine by cerium(IV) in aqueous perchloric and sulfuric acid solutions: a comparative study. Journal of Solution Chemistry 45:246−64

doi: 10.1007/s10953-016-0438-1
[41]

Tekle-Röttering A, von Sonntag C, Reisz E, Vom Eyser C, Lutze HV, et al. 2016. Ozonation of anilines: kinetics, stoichiometry, product identification and elucidation of pathways. Water Research 98:147−59

doi: 10.1016/j.watres.2016.04.001
[42]

Fawzy A, Fawzi A. 2023. Oxidative degradation of sulfafurazole drug by chromium trioxide in different acidic media: a kinetic and mechanism study. Journal of Umm Al-Qura University for Applied Sciences 9:276−84

doi: 10.1007/s43994-023-00035-8
[43]

Valdebenito A, Encinas MV. 2010. Effect of solvent on the free radical polymerization of N, N-dimethylacrylamide. Polymer international 59:1246−51

doi: 10.1002/pi.2856
[44]

Osunkwo CR, Nkole IU, Onu AD, Idris SO. 2018. Kinetics and mechanism of the reduction of tris-(1,10-phenanthroline)cobalt(III) complex by n-methylthiourea in aqueous acidic medium. Nigerian Research Journal of Chemical Sciences 5:82−93

[45]

Nkole IU, Idris SO, Abdulkadir I, Onu AD. 2022. Application of Piszkiewicz model on the electron transfer reaction of dithionite ion and bis-(2-pyridinealdoximato)dioxomolybdate(IV) complex. Scientific Reports 12:22125

doi: 10.1038/s41598-022-24096-7
[46]

De Sterck B, Vaneerdeweg R, Du Prez F, Waroquier M, Van Speybroeck V. 2010. Solvent effects on free radical polymerization reactions: the influence of water on the propagation rate of acrylamide and methacrylamide. Macromolecules 43:827−36

doi: 10.1021/ma9018747
[47]

Ibrahim I, Idris SO, Abdulkadir I, Onu DA. 2022. Thioglycolic acid oxidation by N,N'-phenylenebis(salicylideneiminato)manganese(III) in DMSO/H2O: effects of sodium dodecylsulfate and cetyltrimethylammonium bromide. Results in Chemistry 4:100541

doi: 10.1016/j.rechem.2022.100541
[48]

Laguta AN, Eltsov SV, Mchedlov-Petrossyan NO. 2019. Kinetics of alkaline fading of methyl violet in micellar solutions of surfactants: comparing Piszkiewicz's, Berezin's, and Pseudophase Ion-exchange models. International Journal of Chemical Kinetics 51:83−94

doi: 10.1002/kin.21231
[49]

Dahadha AA, Abunuwar M, Al-qderat M, Al-Abrouni KF. 2023. N-dodecyl β-D-glucopyranoside micelles catalyzed reaction of ascorbic acid with azure A chloride salt dye in acidic aqueous solution: A kinetic, thermodynamic and mechanism study. Colloid and Polymer Science 302:333−343

doi: 10.1007/s00396-023-05202-1
[50]

Subramaniam P, Vanitha T, Kodispathi T, Sundari CRS. 2014. Role of iron(III)-salen chloride as oxidising agent with thiodiglycolic acid: the effect of axial ligands. Journal Mexican Chemical Society 58:211−17

doi: 10.29356/jmcs.v58i2.180
[51]

Pizzolato E, Natali M, Posocco B, Montellano López A, Bazzan I, et al. 2013. Light driven water oxidation by a single site cobalt salophen catalyst. Chemical Communications 49:9941−43

doi: 10.1039/c3cc45457f
[52]

Ibrahim I, Idris SO, Abdulkadir I, Onu AD. 2019. Kinetics and mechanism of the redox reaction of N,N′-phenylenebis-(salicylideneiminato)iron(III) with oxalic acid in mixed aqueous medium. Transition Metal Chemistry 44:269−73

doi: 10.1007/s11243-018-0291-8
[53]

Ngan NK, Lo KM, Wong CSR. 2012. Dinuclear and polynuclear dioxomolybdenum(VI) schiff base complexes: synthesis, structural elucidation, spectroscopic characterization, electrochemistry and catalytic property. Polyhedron 33:235−51

doi: 10.1016/j.poly.2011.11.057
[54]

Abdulsalam S, Idris SO. 2016. Kinetics and mechanism of redox reaction of crystal violet and metabisulphite ion in aqueous acidic medium. Gashua Journal of Sciences and Humanities 2:19−26

[55]

Maila MD, Maree JP, Cele LM. 2014. Acid mine water neutralisation with ammonium hydroxide and desalination with barium hydroxide. Water SA 40:521−28

doi: 10.4314/wsa.v40i3.16
[56]

Jeffery GH, Bassett J, Mendham J, Denney RC. 1989. Vogel's textbook of quantitative chemical analysis. 5th Edition. UK: Longman Scientific & Technical. xxix+877 pp.

[57]

Khraibah NH. 2010. Kinetics of the reduction of hexacyanoferrate(III) with metabisulfite as function of pH. Journal of King Abdulaziz University-Science 22:65−76

doi: 10.4197/sci.22-2.5
[58]

Jiang BY, Du J, Cheng SQ, Wang Q, Zeng XC. 2003. Effects of amine additives on critical micelle concentration of ionic surfactants. Journal of Dispersion Science and Technology 24:755−60

doi: 10.1081/dis-120025542
[59]

Li W, Zhang M, Zhang J, Han Y. 2006. Self-assembly of cetyltrimethylammonium bromide in ethanol-water mixtures. Frontiers of Chemistry in China 1:438−42

doi: 10.1007/s11458-006-0069-y