Removal of the herbicide 2,4-dichlorophenoxyacetic acid from water by using an ultrahighly efficient thermochemically activated carbon

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Danijela V. Bojić
Miloš Miroslav Kostić
Miljana D. Radović Vučić
Nena D. Velinov
Slobodan M. Najdanović
Milica M. Petrović
Aleksandar Lj. Bojić

Abstract

Lagenaria vulgaris activated carbon (LVAC) was synthesized from Lagenaria vulgaris biomass by treatment with diluted H2SO4 followed by thermo-chemical carbonization and overheated steam activation process and used for removal of the herbicide 2,4-di­chlo­rophenoxyacetic acid (2,4-D). Fourier transform infrared spectroscopy (FTIR) indicated that 2,4-D is adsorbed in micropores of the very porous LVAC (665 m2 g-1). LVAC showed high sorption capacity as compared to many previously used sorbents at optimal conditions: the stirring rate of 300 rpm, the sorbent dose of 1.0 g dm-3 and pH from 2 to 7. The experimental maximum sorption capacity of LVAC was 333.3 mg g-1. The pseudo-second-order model and Chrastil model described the 2,4-D sorption kinetics by LVAC. Thermodynamic studies have indicated that the sorption process was endothermic, spontaneous and physical in nature. LVAC was shown to be an ultrahighly efficient sorbent for removal of 2,4-D from groundwater, which could be also recycled and reused.


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How to Cite
Bojić, D. V., Kostić, M. M., Radović Vučić, M. D., Velinov, N. D., Najdanović, S. M., Petrović, M. M., & Bojić, A. L. (2019). Removal of the herbicide 2,4-dichlorophenoxyacetic acid from water by using an ultrahighly efficient thermochemically activated carbon. HEMIJSKA INDUSTRIJA (Chemical Industry), 73(4), 223–237. https://doi.org/10.2298/HEMIND190411019B
Section
Engineering of Materials - Biomaterials

References

Ghimire N, Woodward RT. Under and overuse of pesticides: An international analysis. Ecol. Econ. 2013; 89: 73–81.

Abigail EAM, Melvin SS, Chidambaram R. Application of rice husk nanosorbents containing 2,4-dichlorophenoxyacetic acid herbicide to control weeds and reduce leaching from soil. J. Taiwan. Inst. Chem. Eng. 2016; 63: 318–326.

Njoku VO, Islam MA, Asif M, Hameed BH. Adsorption of 2,4-dichlorophenoxyacetic acid by mesoporous activated carbon prepared from H3PO4-activated langsat empty fruit bunch. J. Environ. Manage. 2015; 154: 138–144.

Tang L, Zhang S, Zeng GM, Zhang Y, Yang GD, Chen J, Wang JJ, Wang JJ, Zhou YY, Deng YC. Rapid adsorption of 2,4-dichlorophenoxyacetic acid by iron oxide nanoparticles-doped carboxylic ordered mesoporous carbon. J. Colloid Interface Sci. 2015; 445: 1–8.

Zhong S, Zhou C, Zhang X, Zhou H, Li H, Zhu X, Wang Y. A novel molecularly imprinted material based on magnetic halloysite nanotubes for rapid enrichment of 2,4-dichlorophenoxyacetic acid in water. J. Hazard. Mater. 2014; 276: 58–65.

Ding L, Lu X, Deng H, Zhang X. Adsorptive removal of 2,4-Dichlorophenoxy- acetic acid (2,4-D) from aqueous solutions using MIEX resin. Ind. Eng. Chem. Res. 2012; 51: 11226–11235.

Gao J, Zhao G, Liu M, Li D. Mechanism of Enhanced Electrochemical Oxidation of 2,4-dichlorophenoxyacetic Acid with in situ Microwave Activated Boron-doped Diamond and Platinum Anodes. J. Phys. Chem. A. 2009; 113: 10466–10473.

Sandeep S, Nagashree KL, Maiyalagan T, Keerthiga G. Photocatalytic degradation of 2,4-dichlorophenoxyacetic acid - A comparative study in hydrothermal TiO2 and commercial TiO2. Appl. Surf. Sci. 2018; 449: 371–379.

Barrera A, Tzompantzi F, Lara V, Gómez R. Photodegradation of 2,4-D over PdO/Al2O3–Nd2O3 photocatalysts prepared by the sol–gel method. J. Photochem. Photobiol. A Chem. 2012; 227: 45–50.

Horikoshi S, Hidaka H, Serpone N. Environmental remediation by an integrated microwave/UV-illumination technique: IV. Non-thermal effects in the microwave-assisted degradation of 2,4-dichlorophenoxyacetic acid in UV-irradiated TiO2/H2O dispersions. J. Photochem. Photobiol. A. Chem. 2003; 159: 289–300.

Maldonado MI, Malato S, Perez-Estrada LA, Gernjak W, Oller I, Domenech X, Peral J. Partial degradation of five pesticides and an industrial pollutant by ozonation in a pilot-plant scale reactor. J. Hazard. Mater. 2006; 38: 363–369.

Pukcothanung Y, Siritanon T, Rangsriwatananon K. The efficiency of zeolite Y and surfactant-modified zeolite Y for removal of 2,4-dichlorophenoxyacetic acid and 1,1′-dimethyl-4,4′-bipyridinium ion. Microporous Mesoporous Mater. 2018; 258: 131–140.

Njoku VO, Hameed BH. Preparation and characterization of activated carbon from corncob by chemical activation with H3PO4 for 2,4-dichlorophenoxyacetic acid adsorption. Chem. Eng. J. 2011; 173: 391–399.

Njoku VO, Foo KY, Hameed BH. Microwave-assisted preparation of pumpkin seed hull activated carbon and its application for the adsorptive removal of 2,4-dichlorophenoxyacetic acid. Chem. Eng. J. 2013; 215–216: 383–388.

Hameed BH, Salman JM, Ahmad AL. Adsorption isotherm and kinetic modeling of 2,4-D pesticide on activated carbon derived from date stones. J. Hazard. Mater. 2009; 163: 121–126.

Gupta VK, Ali I, Suhas, Saini VK. Adsorption of 2,4-D and carbofuran pesticides using fertilizer and steel industry wastes. J. Colloid Interface Sci. 2006; 299: 556–563.

Salman JM, Hameed BH. Adsorption of 2,4-dichlorophenoxyacetic acid and carbofuran pesticides onto granular activated carbon. Desalination 2010; 256: 129–135.

Zhao R, Li X, Sun B, Ji H, Wang C. Diethylenetriamine-assisted synthesis of amino-rich hydrothermal carbon-coated electrospun polyacrylonitrile fiber adsorbents for the removal of Cr(VI) and 2,4-dichlorophenoxyacetic acid. J. Colloid Interface Sci. 2017; 487: 297–309.

Kuśmierek K, Szala M, Światkowski A. Adsorption of 2,4-dichlorophenol and 2,4-dichlorophenoxyacetic acid from aqueous solutions on carbonaceous materials obtained by combustion synthesis. J. Taiwan. Inst. Chem. Eng. 2016; 63: 371–378.

Bojić D, Momčilović M, Milenković D, Mitrović J, Banković P, Velinov N, Nikolić G. Characterization of a low cost Lagenaria vulgaris based carbon for ranitidine removal from aqueous solutions. Arab. J. Chem. 2015; 10: 956–964.

Cardenas-Peña AM, Ibanez JG, Vasquez-Medrano R. Determination of the point of zero charge for electrocoagulation precipitates from an iron anode. Int. J. Electrochem. Sci. 2012; 7: 6142–6153.

Lagergren S. Zurtheorie der sogenannten adsorption gelosterstoffe, Kungliga Svenska Vetenskapsakademiens. Handlingar 1898; 24: 1. (in German)

Ho YS, McKay G. Sorption of dye from aqueous solution by peat. Chem. Eng. J. 1998; 70: 115–124.

Chrastil J. Adsorption of direct dyes on cotton: kinetics of dyeing from finite baths based on new information. Text. Res. J. 1990; 60: 413–416.

Langmuir I. The adsorption of gases on plane surfaces of glass, mica and platinum. J. Am. Chem. Soc. 1918; 40: 1361–1403.

Freundlich HMF. Über die Adsorption in Lösungen. Zeitschrift Für Physikalische Chemie 1907; 57:385–490. (in German)

McKay G, Mesdaghinia A, Nasseri S, Hadi M, Aminabad MS. Optimum isotherms of dyes sorption by activated carbon: fractional theoretical capacity & error analysis. Chem. Eng. J. 2014; 251: 236–247.

Brouers F, Sotolongo O, Marquez F, Pirard JP. Microporous and heterogeneous surface adsorption isotherms arising from Levy distributions. Physica A 2005; 349: 271–282.

Ahmadi-Pour M, Khosravi-Nikou MR, Shariati A. Adsorption of xylene isomers using Ba-faujasite type zeolite: Equilibrium and kinetics study. Chem. Eng. Res. Des. 2018; 138: 387–397.

Mondal S, Aikat K, Siddharth K, Sarkar K, DasChaudhury R, Mandal G, Halder G. Optimizing ranitidine hydrochloride uptake of Parthenium hysterophorus derived N-biochar through response surface methodology and artificial neural network. Process. Saf. Environ. Prot. 2017; 107: 388–401.

Kaouah F, Boumaza S, Berrama T, Trari M, Bendjama Z. Preparation and characterization of activated carbon from wild olive cores (oleaster) by H3PO4 for the removal of Basic Red 46. J. Clean. Prod. 2013; 54: 296–306.

AksuZ, KabasakalE.Batch adsorption of 2,4-dichlorophenoxy-acetic acid (2,4-D) from aqueous solution by granular activated carbon. Sep. Purif. Technol. 2004; 35(3): 223–240.

Diaz-Flores PE, Leyva-Ramos R, Rangel-Mendez JR, Ortiz MM, Guerrero-Coronado RM, Mendoza-Barron J. Adsorption of 2,4-dichlorophenoxyacetic acid from aqueous solution on activated carbon cloth. J. Environ. Eng. Manag. 2006; 16: 249–257.

Iriel A, Bruneel SP, Schenone N, Fernández AF. The removal of fluoride from aqueous solution by a lateritic soil adsorption: kinetic and equilibrium studies. Ecotoxicol. Environ. Saf. 2018; 149: 166–172.

Dabrowski A, Podkosicielny P, Hubicki Z, Barczak M. Adsorption of phenolic compounds by activated carbon-a critical review. Chemosphere 2005; 58: 1049–1070.

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