Snail Shell (Rostellariella) as a Low Cost Adsorbent for Safranine Dye Removal from Aqueous Solution

Main Article Content

Fatima Basim Zwier
https://orcid.org/0000-0002-4853-0137
Muneer A. Al-Da'amy
Eman Talib Kareem
https://orcid.org/0000-0002-6835-1806

Abstract

        In this paper, snail shell powder was used an adsorbent for safranine dye due to its low cost, high efficiency and high adsorption capacity. Experiments were conducted at a temperature of 298 K to find out the effect of pH, concentration, weight, ionic strength and equilibrium time. Also, the best conditions for the adsorption of Safranin dye were implemented at a weight of 0.0200 g of snail shell powder. The removal ratio was 96.09 % at a concentration of 9mg/L and 20 minutes as adsorption time at a temperature of 298 K. The objective of the study to analyze the equilibrium isotherms. The data collected from the experiments were analyzed by the three models of adsorption: Langmuir, Temkin, and Freundlich. The data were suitable for Freundlich isotherm. The calculated thermodynamic information of the process shows that the removal process occurs through an active exchange of random molecules.

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1.
Snail Shell (Rostellariella) as a Low Cost Adsorbent for Safranine Dye Removal from Aqueous Solution. Baghdad Sci.J [Internet]. 2024 Apr. 1 [cited 2024 Apr. 30];21(4):1296. Available from: https://bsj.uobaghdad.edu.iq/index.php/BSJ/article/view/8311
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How to Cite

1.
Snail Shell (Rostellariella) as a Low Cost Adsorbent for Safranine Dye Removal from Aqueous Solution. Baghdad Sci.J [Internet]. 2024 Apr. 1 [cited 2024 Apr. 30];21(4):1296. Available from: https://bsj.uobaghdad.edu.iq/index.php/BSJ/article/view/8311

References

Anderson K, Ryan B, Sonntag W, Kavvada A, Friedl L. Earth observation in service of the 2030 Agenda for Sustainable Development. Geo Spat Inf Sci. 2017; 20(2): 77-96. https://doi.org/10.1080/10095020.2017.1333230.

Ambaye T, Vaccari M, van Hullebusch ED, Amrane A, Rtimi S. Mechanisms and adsorption capacities of biochar for the removal of organic and inorganic pollutants from industrial wastewater. Int J Environ Sci Technol (Tehran). 2021: 1-22.

Scott G, Rajabifard A. Sustainable development and geospatial information: a strategic framework for integrating a global policy agenda into national geospatial capabilities. Geo Spat Inf Sci. 2017; 20(2): 59-76. https://doi.org/10.1080/10095020.2017.1325594.

Alqadami AA, Naushad M, Abdalla MA, Khan MR, Alothman ZA. Adsorptive removal of toxic dye using Fe3O4–TSC nanocomposite: equilibrium, kinetic, and thermodynamic studies. J Chem Eng Data. 2016; 61(11): 3806-13. https://doi.org/10.1021/acs.jced.6b00446.

Shaban M, Abukhadra MR, Hamd A, Amin RR, Khalek AA. Photocatalytic removal of Congo red dye using MCM-48/Ni2O3 composite synthesized based on silica gel extracted from rice husk ash; fabrication and application. J Environ Manage. 2017; 204: 189-99.https://doi.org/10.1016/j.jenvman.2017.08.048.

Peramune D, Manatunga DC, Dassanayake RS, Premalal V, Liyanage RN, Gunathilake C, et al. Recent advances in biopolymer-based advanced oxidation processes for dye removal applications: A review. Environ Res. 2022: 114242. https://doi.org/10.1016/j.envres.2022.114242.

Ćirić-Marjanović G, Blinova NV, Trchová M, Stejskal J. Chemical oxidative polymerization of safranines. J Phys Chem B. 2007; 111(9): 2188-99.https://doi.org/10.1021/jp067407w.

Tewari K, Singhal G, Arya RK. Adsorption removal of malachite green dye from aqueous solution. Rev Chem Eng. 2018; 34(3): 427-53.https://doi.org/10.1515/revce-2016-0041.

Dutta B, Rawoot YA, Checker S, Shelar SB, Barick K, Kumar S, et al. Micellar assisted aqueous stabilization of iron oxide nanoparticles for curcumin encapsulation and hyperthermia application. Nano-Struct Nano-Objects. 2020; 22: 100466.https://doi.org/10.1016/j.nanoso.2020.100466.

Ibrahim HK, Amy MA, Kreem ET. Decolorization of Coomassie brilliant blue G-250 dye using snail shell powder by action of adsorption processes. Res J Pharm Technol. 2019; 12(10): 4921-5.https://doi.org/10.5958/0974-360X.2019.00853.9.

Kibrahim H, Muneer A, TKreem E. Effective Adsorption of Azure B Dye from Aqueous Solution Using Snail Shell Powder. J Biochem Technol. 2018; 9(3): 39-44.https://www.researchgate.net/publication/330384785.

Januário EFD, Vidovix TB, Araujo LAd, Bergamasco Beltran L, Bergamasco R, Vieira AMS. Investigation of Citrus reticulata peels as an efficient and low-cost adsorbent for the removal of safranin orange dye. Environ Technol. 2022; 43(27): 4315-29.https://doi.org/10.1080/09593330.2021.1946601.

Sen S, Das PK, Manik N. Study on the effect of singlewalled carbon nanotubes on junction properties of Safranin–T dye-based organic device. J Phys Commun. 2021; 5(4): 045004.https://doi.org/10.1088/2399-6528/abf2cf.

Kareem ET, Chafat AH, Al-Da’amy MA. Iraqi porcelanite Rocks for Efficient Removal of Safranin Dye from Aqueous Solution. Baghdad Sci J. 2023; 20(2): 0270.http://dx.doi.org/10.21123/bsj.2022.6921

Sahu MK, Patel RK. Removal of safranin-O dye from aqueous solution using modified red mud: kinetics and equilibrium studies. RSC Adv.2015; 5(96):7 8491-501.https://doi.org/10.1039/C5RA15780C.

Muneer A, AL-Shemary RQ, Kareem ET. Study on the Use of Snail Shell as Adsorbent for the Removal of Azure A Dye from Aqueous solution. Int J Pharm Res.. 2018; 45: 123-9.

Paredes-Quevedo LC, González-Caicedo C, Torres-Luna JA, Carriazo JG. Removal of a textile azo-dye (Basic Red 46) in water by efficient adsorption on a natural clay. WAT. AIR AND SOIL POLL.. 2021; 232(1): 1-19. https://doi.org/10.1007/s11270-020-04968-2

Tran TTH, Vu NT, Pham TN, Nguyen XT. Ability to Remove Azo Dye from Textile Dyeing Wastewaters of Carbonaceous Materials Produced from Bamboo Leaves. Novel Materials for Dye-containing Wastewater Treatment. 2021: 185-208.https://doi.org/10.1007/978-981-16-2892-4_8

Suleman M, Zafar M, Ahmed A, Rashid MU, Hussain S, Razzaq A, et al. Castor leaves-based biochar for adsorption of safranin from textilewastewater.Sustainability.2021;13(12):6926. https://doi.org/10.3390/su13126926.

Shaltout WA, El-Naggar GA, Esmail G, Hassan AF. Synthesis and characterization of ferric@ nanocellulose/nanohydroxyapatite bio-composite based on sea scallop shells and cotton stalks: adsorption of Safranin-O dye. Biomass Convers Biorefin. 2022: 1-18.https://doi.org/10.1007/s13399-022-02753-1.

Farhan AM, Zaghair AM, Abdullah HI. Adsorption Study of Rhodamine –B Dye on Plant (Citrus Leaves). Baghdad Sci J. 2022; 19(4): 0838.http://dx.doi.org/10.21123/bsj.2022.19.4.0838.

Bensalah J, Habsaoui A, Dagdag O, Lebkiri A, Ismi I, Rifi E, et al. Adsorption of a cationic dye (Safranin) by artificial cationic resins AmberliteŪIRC-50: Equilibrium, kinetic and thermodynamic study. Chemical Data Collections. 2021;35:100756.https://doi.org/10.1016/j.cdc.2021.100756.

De Farias M, Silva M, Vieira M. Adsorption of bisphenol A from aqueous solution onto organoclay: Experimental design, kinetic, equilibrium and thermodynamic study. Powder Technol. 2022; 395: 695-707.https://doi.org/10.1016/j.powtec.2021.10.021.

Gun M, Arslan H, Saleh M, Yalvac M, Dizge N. Optimization of silica extraction from rice husk using response surface methodology and adsorption of safranin dye. Int J Environ Res. 2022; 16(2): 1-13. https://doi.org/10.1007/s41742-022-00399-5.

Ambaye T, Vaccari M, van Hullebusch ED, Amrane A, Rtimi S. Mechanisms and adsorption capacities of biochar for the removal of organic and inorganic pollutants from industrial wastewater. Int J Environ Sci Technol (Tehran). 2021; 18(10): 3273-94. https://doi.org/10.1007/s13762-020-03060-w.

Langmuir I. The adsorption of gases on plane surfaces of glass, mica and platinum. J Am Chem Soc. 1918; 40(9): 1361-403.https://doi.org/10.1021/ja02242a004.

Freundlich H. Über die adsorption in lösungen. Z. Phys Chem 1907; 57(1): 385-470.https://doi.org/10.1515/zpch-1907-5723.

Chen X, Hossain MF, Duan C, Lu J, Tsang YF, Islam MS, et al. Isotherm models for adsorption of heavy metals from water-A review. Chemosphere. 2022: 135545.https://doi.org/10.1016/j.chemosphere.2022.135545.

Verma M, Ahmad W, Park J-H, Kumar V, Vlaskin MS, Vaya D, et al. One-step functionalization of chitosan using EDTA: Kinetics and isotherms modeling for multiple heavy metals adsorption and their mechanism. J Water Process Eng. 2022; 49: 102989.https://doi.org/10.1016/j.jwpe.2022.102989

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