Kinetic, Isotherm, and Thermodynamic Study of Bismarck Brown Dye Adsorption onto Graphene Oxide and Graphene Oxide-Grafted-Poly (n-butyl methacrylate-co-methacrylic Acid)

Main Article Content

Alaa A. Mizhir
Hadi Salman Al-Lami
Ali A. Abdulwahid

Abstract

The adsorption behavior of Bismarck brown (BB) dye from aqueous solutions onto graphene oxide GO and graphene oxide-g-poly (n-butyl methacrylate-co-methacrylic acid) GO-g-pBCM as adsorbents was investigated. The prepared GO and GO-g-pBCM were characterized by Fourier transform infrared spectroscopy FTIR, which confirmed the compositions of the prepared adsorbents. Adsorption of BB dye onto GO and GO-g-pBCM was explored in a series of batch experiments under various conditions. The data were examined utilizing Langmuir and Freundlich isotherms. The Langmuir isotherm was seen as increasingly reasonable from the experimental information of dye on formulating adsorbents. Kinetic investigations showed that the experimental data were fitted very well to the pseudo-second-order model, and the calculated positive values of the (∆H° and ∆S°) indicated that the adsorption of BB dye onto GO and GO-g-pBCM was endothermic and increasing of the adsorption process randomness. The negative values of (∆G°) imply that the adsorption process was spontaneous.

Article Details

How to Cite
1.
Kinetic, Isotherm, and Thermodynamic Study of Bismarck Brown Dye Adsorption onto Graphene Oxide and Graphene Oxide-Grafted-Poly (n-butyl methacrylate-co-methacrylic Acid). Baghdad Sci.J [Internet]. 2022 Feb. 1 [cited 2024 Apr. 26];19(1):0132. Available from: https://bsj.uobaghdad.edu.iq/index.php/BSJ/article/view/5131
Section
article

How to Cite

1.
Kinetic, Isotherm, and Thermodynamic Study of Bismarck Brown Dye Adsorption onto Graphene Oxide and Graphene Oxide-Grafted-Poly (n-butyl methacrylate-co-methacrylic Acid). Baghdad Sci.J [Internet]. 2022 Feb. 1 [cited 2024 Apr. 26];19(1):0132. Available from: https://bsj.uobaghdad.edu.iq/index.php/BSJ/article/view/5131

References

Shahabuddin S, Khanam R, Khalid M, Sarih NM, Ching JJ, Mohamad S, et al. Synthesis of 2D boron nitride doped polyaniline hybrid nanocomposites for photocatalytic degradation of carcinogenic dyes from aqueous solution. Arabian J. Chem. 2018;11:1000-16.

Zhou X, Zheng P, Wang L, Liu X. Preparation of sulfonated poly (arylene ether nitrile)-based adsorbent as a highly selective and efficient adsorbent for cationic dyes. Polymers. 2019;1(1):1-17.

Fatima B, Siddiqui SI, Ahmed R, Chaudhry SA. Green synthesis of f-CdWO4 for photocatalytic degradation and adsorptive removal of Bismarck Brown R dye from water. Water Resour. Ind. 2019;22:1-18.

Siddiqui SI, Rathi G, Chaudhry SA. Acid washed black cumin seed powder preparation for adsorption of methylene blue dye from aqueous solution: thermodynamic, kinetic and isotherm studies. J. Mol. Liq. 2018;264:275-84.

Sherino B, Abdul Halim SN, Shahabuddin S, Mohamad S. Simultaneous removal of carcinogenic anionic and cationic dyes from environmental water using a new Zn-based metal-organic framework. Sep. Sci. Technol. 2020:1-4.

Wu Sk, Pan Y, Wang N, Lu T, Dai W j. Azo dye degradation behaviour of AlFeMnTiM (M= Cr, Co, Ni) high-entropy alloys, Int. J. Miner. Metall. Mater. Metallurgy, and Materials. 2019;26:124-32.

Kim S, Park CM, Jang M, Son A, Her N, Yu M, et al. Aqueous removal of inorganic and organic contaminants by graphene-based nano adsorbents: A review. Chemosphere. 2018;212:1104-24.

Ai Y, Liu Y, Lan W, Jin J, Xing J, Zou Y,et al. The effect of pH on the U (VI) sorption on graphene oxide (GO): a theoretical study. Chem. Eng. J. 2018;343:460-6.

Guo L, Xu Y, Zhuo M, Liu L, Xu Q, Wang L, et al. Highly efficient removal of Gd (III) using hybrid hydrosols of carbon nanotubes/graphene oxide in dialysis bags and synergistic enhancement effect. Chem. Eng. J. 2018;348:535-45.

Yang Y, Yu Y, Yang N, Huang B, Kuang YF, Liao YW. Adsorption behaviour of isocyanate/ethylenediaminetetraacetic acid-functionalized graphene oxides for Cu2+ removal. Water Sci. Technol. 2018;78:2459-68.

Zhang J, Azam MS, Shi C, Huang J, Yan B, Liu Q, et al. Poly (acrylic acid) functionalized magnetic graphene oxide nanocomposite for removal of methylene blue, RSC Advances. 2015;5:32272-82.

Mizhir AA, Abdulwahid AA, Al-Lami HS. Chemical functionalization graphene oxide for the adsorption behaviour of Bismarck Brown dye from aqueous solutions. Egypt. J. Chem. 2020;63(5):1679-1696.

Islamova RM, Golovochesova OI, Monakov YB, Utepova IA, Musikhina AA, Chupakhin ON. Effect of heterocyclic derivatives of ferrocene on free-radical polymerization of methyl methacrylate and styrene. Polym. Sci. Ser. B 2010;52(11-12):637-47.

Yakimtsova LB, Egorova EL, Matusevich YI, Selevich KA, Kurtikova AL. Preparation and thermal degradation of methyl methacrylate-methacrylic acid copolymers. Russ. J. Appl. Chem. 2009;82(9):1636-43..

Liu J, Liu G, Liu W. Preparation of water-soluble β-cyclodextrin/poly (acrylic acid)/graphene oxide nanocomposites as new adsorbents to remove cationic dyes from aqueous solutions. Chem. Eng. J. 2014;257:299-308..

Sabnis RW. Handbook of biological dyes and stains: synthesis and industrial applications, John Wiley & Sons. USA 2010.

Fraga TJM, de Souza ZSB, Fraga DM, Carvalho MN, de Luna Freire EMP, Ghislandi MG, et al. Comparative approach towards the adsorption of Reactive Black 5 and methylene blue by n-layer graphene oxide and its amino-functionalized derivative. Adsorption. 26 (2020) 283-01.

Langmuir I. The adsorption of gases on plane surface of glass, mica and platinum, J. Am. Chem. Soc. 1918;40:1361-403.

Hasanzadeh M, Simchi A, Far HS. Nanoporous composites of activated carbon-metal organic frameworks for organic dye adsorption: Synthesis, adsorption mechanism and kinetics studies. J. Ind. Eng. Chem. 2020;81:405-14.

Sultan MT, Al-Lami HS, Al-Dujiali AH. Synthesis and characterization of alumina-grafted acrylic acid monomer and polymer and its adsorption of phenol and p-chlorophenol. Desalin. Water Treat. 2019;150:192-03.

Freundlich HMF. About the adsorption. Zeitschrift für Physikalische Chemie, 1906;57:385–470.

Wang G, Zhang Z, Li W, Du C, Chen T. Production and characterization of modified biochar by corn cob and its ability to absorb phenol. In IOP Conference Series: Mater. Sci. Eng. 2020 (Vol. 729, No. 1, p. 012070). IOP Publishing.

Senturk HB, Ozdes D, Gundogdu A, Duran C, Mustafa S. Removal of phenol from aqueous solutions by adsorption onto organomodified Tirebolu bentonite: Equilibrium, kinetic and thermodynamic study, J. Hazard. Mater. 2009; 172:353–362.

Potgieter JH, Pearson S, Pardesi C. Kinetic and Thermodynamic Parameters for the Adsorption of Methylene Blue Using Fly Ash under Batch, Column, and Heap Leaching Configurations. Coal Combustion and Gasification Products. 2018;10(2):23-33.

Bu J, Yuan L, Zhang N, Liu D, Meng Y, Peng X. High-efficiency adsorption of methylene blue dye from wastewater by a thiosemicarbazide functionalized graphene oxide composite. Diamond Relat. Mater. 2020;101:1-10.

Goddeti SM, Bhaumik M, Maity A, Ray SS. Removal of Congo red from aqueous solution by adsorption using gum ghatti and acrylamide graft copolymer coated with zero valent iron. Int. J. Biol. Macromol. 2020;149:21-30.

Zhong M, Liu YT, Xie XM. Self-healable, super-tough graphene oxide–poly (acrylic acid) nanocomposite hydrogels facilitated by dual cross-linking effects through dynamic ionic interactions. J. Mater. Chem. B . 2015;3(19):4001-8.

Ma J, Cai P, Qi W, Kong D, Wang H. The layer-by-layer assembly of polyelectrolyte functionalized graphene sheets: a potential tool for biosensing. Colloids Surf. A Physicochem. Eng. Asp. 2013;426:6-11.

Park S, Lee KS, Bozoklu G, Cai W, Nguyen ST, Ruoff RS. Graphene oxide papers modified by divalent ions enhancing mechanical properties via chemical cross-linking. Am. Chem. Soc. Nano. 2020;(2):572-78.

Cong HP, Wang P, Yu SH. Highly elastic and super stretchable graphene oxide/polyacrylamide hydrogels. Small. 2014; 10:448-53.

Jain R, Shrivastava M. Adsorptive studies of hazardous dye Tropaeoline 000 from an aqueous phase on to coconut-husk. J. Hazard. Mater. 2008;158(2-3):549-56.

Bazrafshan E, Mostafapour FK, Hosseini AR, Khorshid AR, Mahvi AH. Decolourization of reactive red 120 dye by using single-walled carbon nanotubes in aqueous solutions, J. Chem. 2013;1-8.

Zhang L, Zeng Y, Cheng Z. Removal of heavy metal ions using chitosan and modified chitosan: A review, J. Mol. Liq. 2016,;214:175-191.

Gilles CH, Macewan TH, Nakhwa SN, Smith D. A system of classification of solution adsorption isotherms, and its use in diagnosis of adsorption mechanisms and measurement of specific surface areas of solids. J. Chem. Soc. 1960;2:3973-93.

Islam M, Mishra PC, Patel R. Fluoride adsorption from aqueous solution by a hybrid thorium phosphate composite. Chem. Eng. J. 2011;166(3):978-85.

Ren S, Meng Z, Sun X, Lu H, Zhang M, Lahori AH, et al. Comparison of Cd2+ adsorption onto amphoteric, amphoteric-cationic and amphoteric-anionic modified magnetic bentonites, Chemosphere. 2020;239:124840.

Tran HN, Tomul F, Nguyen HTH, Nguyen DT, Lima EC, Le GT. Innovative spherical biochar for pharmaceutical removal from water: Insight into adsorption mechanism. J. Hazard. Mater. 2020; 394:1-46.

Similar Articles

You may also start an advanced similarity search for this article.