» Articles » PMID: 37894603

Ecofriendly Synthesis of Magnetic Composites Loaded on Rice Husks for Acid Blue 25 Decontamination: Adsorption Kinetics, Thermodynamics, and Isotherms

Overview
Journal Molecules
Publisher MDPI
Specialty Biology
Date 2023 Oct 28
PMID 37894603
Authors
Affiliations
Soon will be listed here.
Abstract

Addressing the growing need for methods for ecofriendly dye removal from aqueous media, this study explores the potential of rice husks coated with iron oxide (FeO@RH composites) for efficient Acid Blue 25 decontamination. The adsorption potential of Acid Blue 25 is analyzed using raw rice husks and FeO nanoparticles in the literature, but their enhanced removal capacity by means of FeO@RH composites is reported for the first time in this study. FeO@RH composites were analyzed by using analytical techniques such as TGA, SEM, FTIR, BET, and the point of zero charge (pH). The Acid Blue 25 adsorption experiment using FeO@RH composites showed maximum adsorption at an initial concentration of Acid Blue 25 of 80 ppm, a contact time of 50 min, a temperature of 313 K, 0.25 g of FeO@RH composites, and a pH of 2. The maximum percentage removal of Acid Blue 25 was found to be 91%. Various linear and nonlinear kinetic and isothermal models were used in this study to emphasize the importance and necessity of the adsorption process. Adsorption isotherms such as the Freundlich, Temkin, Langmuir, and Dubinin-Radushkevich (D-R) models were applied. The results showed that all the isotherms were best fitted on the data, except the linear form of the D-R isotherm. Adsorption kinetics such as the intraparticle kinetic model, the Elovich kinetic model, and the pseudo-first-order and pseudo-second-order models were applied. All the kinetic models were found to be best fitted on the data, except the PSO model (types II, III, and IV). Thermodynamic parameters such as ΔG° (KJ/mol), ΔH° (KJ/mol), and ΔS° (J/K*mol) were studied, and the reaction was found to be exothermic in nature with an increase in the entropy of the system, which supported the adsorption phenomenon. The current study contributes to a comprehensive understanding of the adsorption process and its underlying mechanisms through characterization, the optimization of the conditions, and the application of various models. The findings of the present study suggest practical applications of this method in wastewater treatment and environmental remediation.

Citing Articles

Sunlight-activated heterostructure MoS/CdS nanocomposite photocatalyst with enhanced photocatalytic activity: band alignment and mechanism study.

Hamid K, Bin Mukhlish M, Uddin M RSC Adv. 2024; 14(52):38908-38923.

PMID: 39654911 PMC: 11627252. DOI: 10.1039/d4ra06857b.


Selective Removal of Chlorophyll and Isolation of Lutein from Plant Extracts Using Magnetic Solid Phase Extraction with Iron Oxide Nanoparticles.

Flieger J, Zuk N, Pasieczna-Patkowska S, Kusmierz M, Panek R, Franus W Int J Mol Sci. 2024; 25(6).

PMID: 38542125 PMC: 10970386. DOI: 10.3390/ijms25063152.


Aminated Rapeseed Husks () as an Effective Sorbent for Removing Anionic Dyes from Aqueous Solutions.

Jozwiak T, Filipkowska U Molecules. 2024; 29(4).

PMID: 38398595 PMC: 10892382. DOI: 10.3390/molecules29040843.


Synthesis of iron oxide nanoparticles using orange fruit peel extract for efficient remediation of dye pollutant in wastewater.

Sithara N, Bharathi D, Lee J, Mythili R, Devanesan S, Alsalhi M Environ Geochem Health. 2024; 46(2):30.

PMID: 38227286 DOI: 10.1007/s10653-023-01781-8.

References
1.
Rapo E, Tonk S . Factors Affecting Synthetic Dye Adsorption; Desorption Studies: A Review of Results from the Last Five Years (2017-2021). Molecules. 2021; 26(17). PMC: 8433845. DOI: 10.3390/molecules26175419. View

2.
Gupta V, Kumar R, Nayak A, Saleh T, Barakat M . Adsorptive removal of dyes from aqueous solution onto carbon nanotubes: a review. Adv Colloid Interface Sci. 2013; 193-194:24-34. DOI: 10.1016/j.cis.2013.03.003. View

3.
Wang J, Kou L, Huang Z, Zhao L . One-pot preparation of MnO impregnated cotton fibers for methylene blue dye removal. RSC Adv. 2022; 8(38):21577-21584. PMC: 9080937. DOI: 10.1039/c8ra03924k. View

4.
Homagai P, Poudel R, Poudel S, Bhattarai A . Adsorption and removal of crystal violet dye from aqueous solution by modified rice husk. Heliyon. 2022; 8(4):e09261. PMC: 9019243. DOI: 10.1016/j.heliyon.2022.e09261. View

5.
Yuan Z, Wang J, Wang Y, Liu Q, Zhong Y, Wang Y . Preparation of a poly(acrylic acid) based hydrogel with fast adsorption rate and high adsorption capacity for the removal of cationic dyes. RSC Adv. 2022; 9(37):21075-21085. PMC: 9066031. DOI: 10.1039/c9ra03077h. View