Adsorption of remazol golden yellow dye from aqueous solution by acerola core: kinetic and equilibrium studies

Authors

DOI:

https://doi.org/10.5902/2179460X64900

Keywords:

Acerola core, biosorption, remazol golden yellow, textile wastewater.

Abstract

This work was conducted to evaluate the efficiency of the acerola (Malpighia emarginata) core as adsorbent (ACB) and as a precursor of adsorbent charcoal (CAB) and activated charcoal (ACP), to remove the textile dye remazol golden yellow (RGY) in solution. The adsorbents characterization was obtained by Fourier-transform infrared spectroscopy, thermogravimetric analysis (TG) and determination of the specific area and the point of zero charge (pHpzc). The best conditions for adsorption for this adsorbent was reached through adsorbent mass studies and kinetic and equilibrium assays. The adsorption capacity q (mg.g-1) was used to analyze the effects. The pHpzc were 4.15 for ACB, 6.00 for CAB and 4.32 for ACP, demonstrating superficial charge favorable to dye adsorption. Considering the kinetic aspects, the pseudo-first order model adjusted more satisfactorily to experimental data. Related to isotherms, Langmuir was more efficient to represent experimental data of dye adsorption. ACB, CAB and ACP are potential adsorbents for dyes in effluents, presenting maximum adsorption capacity, in the study conditions, of 52.35 mg.g-1, 16.40 mg.g-1, and 119.00 mg.g-1, respectively.

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Author Biographies

Ada Azevedo Barbosa, Universidade Federal de Pernambuco, Recife, PE, Brazil

Possui graduação e mestrado em Engenharia de Alimentos pela Universidade Estadual do Sudoeste da Bahia, Pós-graduação em engenharia de segurança do trabalho e, graduação e doutorado em Engenharia química. Experiencia em docência para os cursos de engenharia de alimentos, engenharia ambiental e bacharel em química com atribuições tecnológicas.

Marina Gomes Silva, Universidade Federal de Pernambuco, Recife, PE, Brazil

Graduação em Engenharia Química. Aluna de Mestrado em Engenharia Química.

 

Ingrid Larissa da Silva Santana, Universidade Federal de Pernambuco, Recife, PE, Brazil

Possui graduação em Engenharia Química pela Universidade Federal de Pernambuco. Mestranda de Engenharia Química.

Ramon Vinícius Santos de Aquino, Universidade Federal de Pernambuco, Recife, PE, Brazil

Bacharel em Química Industrial pela Universidade Federal de Pernambuco (UFPE) e Mestre em Engenharia Química pelo PPGEQ-UFPE. 

Naiana Santos da Cruz Santana Neves, Universidade Federal de Pernambuco, Recife, PE, Brazil

Engenheira Química pela Universidade Federal de Pernambuco. Mestre em Engenharia Química pela Universidade Federal de Pernambuco. Doutoranda pelo Programa de Pós-Graduação em Engenharia Química da Universidade Federal de Pernambuco.

Isis Henriqueta dos Reis Ferreira, Universidade Federal de Pernambuco, Recife, PE, Brazil

Engenheira Química formada pela Universidade Federal de Pernambuco (UFPE). Bolsista CAPES pelo programa Ciência sem Fronteiras, estudou na Universidade do Alabama em Tuscaloosa, Estados Unidos da América.

Otidene Rossiter Sá da Rocha, Universidade Federal de Pernambuco, Recife, PE, Brazil

Possui graduação em Engenharia Química pela Universidade Federal de Pernambuco, mestrado em Engenharia Química pela Universidade Federal do Rio Grande do Norte e doutorado em Engenharia Química pela Universidade Federal do Rio Grande do Norte. Atualmente é professor adjunto da Universidade Federal de Pernambuco. 

References

AHMED, M.; MASHKOOR, F.; NASAR, A. Development, characterization, and utilization of magnetized orange peel waste as a novel adsorbent for the confiscation of crystal violet dye from aqueous solution. Groundwater for Sustainable Development, v. 10, p. 1-10, 2020.

AHMED, M. J.; THEYDAN, S. K. Equilibrium isotherms, kinetics and thermodynamics studies of phenolic compounds adsorption on palm-tree fruit stones. Ecotoxicology and Environmental Safety, v.84, p. 39–45, 2012.

ALJEBOREE, A. M.; ALSHIRIFI, A. N.; ALKAIM, A. F. Kinetics and equilibrium study for the adsorption of textile dyes on coconut shell activated carbon. Arabian Journal of Chemistry, v. 10, p. S3381-S3393, 2017.

ANGIN, D. Utilization of activated carbon produced from fruit juice industry solid waste for the adsorption of Yellow 18 from aqueous solutions. Bioresource Technology, v.168, p.259–266, 2014.

ARAÚJO, K. S.; ANTONELLI, R.; GAYDECZKA, B.; GRANATO, A. C.; MALPASS, G. R. P. Processos oxidativos avançados: uma revisão de fundamentos e Efluentes, aplicações no tratamento de águas residuais urbanas e Industriais. Revista Ambiente e Agua, v.9, p.445–458, 2014.

ARYA, M. C.; BAFILA, P. S.; MISHRA, D.; NEGI, K.; KUMAR, R.; BUGHANI, A. Adsorptive removal of Remazol Brilliant Blue R dye from its aqueous solution by activated charcoal of Thuja orientalis leaves: an eco-friendly approach. SN Aplplied Sciences, v. 2, 265, 2020.

AVELAR, F. F.; BIANCHI, M. L.; GONÇALVES, M.; DA MOTA, E.G. The use of piassava fibers (Attalea funifera) in the preparation of activated carbon. Bioresource Technology, v.101, p.4639–4645, 2010.

AZIZ, A. R. A.; ASAITHAMBI, P.; DAUD, W. M. A. B. W. Combination of electrocoagulation with advanced oxidation processes for the treatment of distillery industrial effluent. Process Safety and Environmental Protection, Prot. v.99, p.227–235, 2016.

BARBOSA, A. A.; AQUINO, R. V. S.; OLIVEIRA, A. F. B.; DANTAS, R. F.; SILVA, J. P.; DUARTE, M. M. M. B., OTIDENE, R. S. R. 2019. Development of a new photocatalytic reactor built from recyclable material for the treatment of textile industry effluents. Desalination and Water Treatment, v.151, p. 82–92, 2019.

BAYOMIE, O. S.; KANDEEL, H.; SHOEIB, T.; YANG, H.; YOUSSEF, N.; EL-SAYED, M. M. H. Novel approach for effective removal of methylene blue dye from water using fava bean peel waste. Scientific Reports, v. 10, 7824, 2020.

BHATNAGAR, A.; SILLANPÄÄ, M. Utilization of agro-industrial and municipal waste materials as potential adsorbents for water treatment-A review. Chemical Engineering Journal, v.157, p.277–296, 2010.

BOUHADJRA, K.; LEMLIKCHI, W.; FERHATI, A.; MIGNARD, S. Enhancing removal efficiency of anionic dye (cibacron blue) using waste potato peels powder. Scientific Reports, v. 11, 2090, 2021.

CHAKMA, S.; DAS, L.; MOHOLKAR, V.S. Dye decolorization with hybrid advanced oxidation processes comprising sonolysis/Fenton-like/photo-ferrioxalate systems: A mechanistic investigation. Separation and Purification Technology, v.156, p.596–607, 2015.

CHAKRABORTY, T. K.; ISLAM, M. S.; KABIR, A. H. M. E.; GHOSH, G. C. Jute (Corcholus olitorius) stick charcoal as a low-cost adsorbent for the removal of methylene blue dye from aqueous solution. SN applied Sciences, v. 2, 765, 2020.

HASSAAN, M.A., EL NEMR, A., MADKOUR, F.F. Advanced oxidation processes of Mordant Violet 40 dye in freshwater and seawater. Egyptian Journal of Aquatic Research, v.43, p.1–9, 2017.

HOLKAR, C.R., JADHAV, A.J., PINJARI, D. V., MAHAMUNI, N.M., PANDIT, A.B. A critical review on textile wastewater treatments: Possible approaches. Journal of Environmental Management, v.182, p.351–366, 2016.

JARAMILLO-SIERRA, B.; MERCADO-CABRERA, A.; HERNÁNDEZ-ARIAS, A. N.; PEÑA-ERGUILUZ, R.; LÓPEZ-CALLEJAS, R.; RODRÍGUEZ-MÉNDEZ, B. G.; VALENCIA-ALVARADO, R. Methylene blue degradation assesment bo advanced oxidation methods. Journal of Applied Research and Technology, v.17, p.172-179, 2019.

LAFI, R.; MONTASSER, I.; HAFIANE, A. Adsorption of congo red dye from aqueous solutions by prepared activated carbon with oxygen-containing functional groups and its regeneration. Adsorption Science and Technology, v. 37, 160-181

LARGITTE, L.; PASQUIER, R. A review of the kinetics adsorption models and their application to the adsorption of lead by an activated carbon. Chemical Engineering Research and Design, v. 109, p. 495-504, 2016.

LI, H.; LIU, S.; ZHAO, J.; FENG, N. Removal of reactive dyes from wastewater assisted with kaolin clay by magnesium hydroxide coagulation process. Colloids Surfaces A Physicochemical and Engineering Aspect. v.494, p.222–227, 2016.

MONTGOMERY, D. C. Introdução ao controle estatístico da qualidade (Introduction to statistical quality control). 4th ed. Rio de Janeiro: LTC, 2012.

REDDY, D. H. K.; RAMANA, D. K. V.; SESHAIAH, K.; REDDY, A. V. R. Biosorption of Ni(II) from aqueous phase by Moringa oleifera bark, a low cost biosorbent. Desalination, v.268, p.150–157, 2011.

RODRIGUES, L. A.; DA SILVA, M. L. C. P.; ALVAREZ-MENDES, M. O.; COUTINHO, A.; DOS, R.; THIM, G. P. Phenol removal from aqueous solution by activated carbon produced from avocado kernel seeds. Chemical Engineering Journal, v.174, p.49–57, 2011.

SÁNCHEZ-NAVA, D. M.; LÓPEZ-GONZÁLEZ, H.; OLGUÍN, M. T.; BULBULIAN, S. Nickel (II) sorption from aqueous media by Agave salmiana as biosorbent. Journal of Applied Research and Technology, v.17, p.186-194, 2019.

SCHIMMEL, D., FAGNANI, K.C., DOS SANTOS, J.B.O., BARROS, M.A.S.D., DA SILVA, E.A. Adsorption of turquoise blue qg reactive dye on commercial activated carbon in batch reactor: Kinetic and equilibrium studies. Brazilian Journal of Chemical Engineering,. v.27, p.289–298, 2010.

SILVERSTEIN, R. M.; WEBSTER, F. X.; KIEMLE, D. J. Identificaçãp Espectrométrica de Compostos Orgânicos (Spectrometric Identification of Organic Compounds). 7th ed. Rio de Janeiro: LTC, 2006.

SOLOMONS, T. W. G.; FRYHLE, C.B. Química Orgânica (Organic Chemistry). 10th ed. Rio de Janeiro: LTC, 2012.

SOTO, M. L.; MOURE, A.; DOMÍNGUEZ, H.; PARAJÓ, J. C. Recovery, concentration and purification of phenolic compounds by adsorption: A review. Journal of Food Engineering, v.105, p.1–27, 2011.

TAGLIAFERRO, G. V.; PEREIRA, P. H. F.; RODRIGUES, L. Á.; PINTO DA SILVA, M. L. C. Adsorção de chumbo, cádmio e prata em óxido de nióbio (v) hidratado preparado pelo método da precipitaç ão em solução homogd̂nea. Quimica Nova, v.34, p. 101–105, 2011.

TOMUL, F.; ARSLAN, Y.; BAŞOĞLU, F. T.; BABUÇCUOĞLU, Y.; TRAN, H. N.Efficient removal of anti-inflammatory from solution by Fe-containing activated carbon: Adsorption kinetics, isotherms, and thermodynamics. Journal of Environmental Management, v.238, p.296–306, 2019.

TRAN, H. N.; CHAO, H. P. Adsorption and desorption of potentially toxic metals on modified biosorbents through new green grafting process. Environmental Science and Pollution Research, v.25, p.12808–12820, 2018.

VIOTTI, P. V.; MOREIRA, W. M.; SANTOS, O. A. A.; BERGAMASCO, R.; VIEIRA, A. M. S.; VIEIRA, M. F. (2019) Diclofenac removal from water by adsorption on Moringa oleifera pods and activated carbon: Mechanism, kinetic and equilibrium study. Journal of Cleaner Production, v.219, p.809–817, 2019.

WAWRZKIEWICZ, M.; WIŚNIEWSKA, M.; GUN’KO, V. M.; ZARKO, V. I. Adsorptive removal of acid, reactive and direct dyes from aqueous solutions and wastewater using mixed silica-alumina oxide. Powder Technology, v.278, p.306–315, 2015.

WIDIYASTUTI, W.; ROIS, M. F.; SUARI, N. M. I. P.; SETYAWAN, H. Activated carbon nanofibers derived from coconut shell charcoal for dye removal application. Advanced Powder Technology, v. 31, n. 8, p. 3267-3273, 2020.

ZHANG, B.; WU, Y.; CHA, L. Removal of methyl orange dye using activated biochar derived from pomelo peel wastes: performance, isotherm and kinetic studies. Journal of Dispersion Science and Technology, v. 41, n. 1, p. 125-136, 2020.

ZHAO, Y.; ZHU, L.; LI, W.; LIU, J.; LIU, X.; HUANG, K. Insights into enhanced adsorptive removal of rhodamine B by different chemically modified garlic peels: Comparison, kinetics, isotherms, thermodynamics and mechanism. Journal of Molecular Liquids, v. 293, p. 1-10, 2019.

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Published

2022-02-09 — Updated on 2022-04-06

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How to Cite

Barbosa, A. A., Silva, M. G., Santana, I. L. da S., Aquino, R. V. S. de, Neves, N. S. da C. S., Ferreira, I. H. dos R., & Rocha, O. R. S. da. (2022). Adsorption of remazol golden yellow dye from aqueous solution by acerola core: kinetic and equilibrium studies. Ciência E Natura, 43, e74 . https://doi.org/10.5902/2179460X64900 (Original work published February 9, 2022)