Adsorption Technique for Color Removal from Aqueous Solution using Nano NiO as Adsorbent

Main Article Content

Omar Sadiq Ali
https://orcid.org/0009-0008-5302-2410
Dunya Edan AL-Mammar
https://orcid.org/0000-0003-2331-2747

Abstract

In the present study, nickel oxide nanoparticles (NiO-NPs) were synthesized using the aqueous extract of two leaf plants, Allium porrum (Leek) NiO-P and Apium graveolens (Celery) NiO-G, as reducing agents. The synthesized NiO-NPs were utilized as adsorbents to remove Biebrich Scarlet (BS) dye from water using the adsorption technique. The NiO-P and NiO-G surfaces were characterized using Fourier transform infrared (FTIR), X-ray diffraction (XRD), atomic force microscopy (AFM), scanning electron microscopy (SEM), and Brunauer-Emmett-Teller (BET). The batch adsorption experiments were achieved to explore the optimum conditions for the adsorption of BS dye onto the synthesized NiO-NPs, such as NiO-NPs dosage, initial concentration of BS, contact time, temperature, and pH. The equilibrium data of BS adsorption on NiO-P and NiO-G surfaces best fitted the Langmuir isotherm model. Thermodynamic data such as ΔG°, ΔH°, and ΔS° were also estimated. The adsorption of BS dye onto NiO-P and NiO-G surfaces is a spontaneous and endothermic process. The adsorption rates were calculated by pseudo-first-order (PFO) and pseudo-second-order (PSO) kinetics models, and it was obtained that the correlation coefficient R2 for PSO was in the range of 0.9762-0.9971 and 0.9408-0.9966 for NiO-P and NiO-G, respectively. Furthermore, the qe cal values for PSO are almost in agreement with the experimental qe exp at all temperatures. As a result, the rate mechanism is well explained by the pseudo-second-order model (PSO).

Article Details

How to Cite
Adsorption Technique for Color Removal from Aqueous Solution using Nano NiO as Adsorbent. (2024). Ibn AL-Haitham Journal For Pure and Applied Sciences, 37(2), 298-314. https://doi.org/10.30526/37.2.3330
Section
Chemistry

How to Cite

Adsorption Technique for Color Removal from Aqueous Solution using Nano NiO as Adsorbent. (2024). Ibn AL-Haitham Journal For Pure and Applied Sciences, 37(2), 298-314. https://doi.org/10.30526/37.2.3330

Publication Dates

References

Ahmad, H.; Aziz, T.; Zia, M.; Sabir, M.; Khalid, H. Sources and composition of waste water: threats to plants and soil health. In Soil Science: Agricultural and Environmental Prospectives; Springer: 2016, 349-370. https://doi.org/10.1007/978-3-319-34451-5_16.

Cooksey, C. Quirks of dye nomenclature. 13. Biebrich scarlet. Biotechnic & Histochemistry 2020, 95, pp.194-197. https://doi.org/10.1080/10520295.2019.1662945.

Rashid, T.U.; Kabir, S.F.; Biswas, M.C.; Bhuiyan, M.R. Sustainable wastewater treatment via dye–surfactant interaction: a critical review. Industrial & Engineering Chemistry Research, 2020, 59, 9719-9745. https://dx.doi.org/10.1021/acs.iecr.0c00676.

Al Nasir, H.; Mohammed, S. Experimental investigation on adsorption of methyl orange using eggshells as adsorbent surface. Ibn AL-Haitham Journal For Pure and Applied Sciences, 2023, 36(1), 197-207. https://doi.org/10.30526/36.1.2890.

Foroutan, R.; Mohammadi, R.; Farjadfard, S.; Esmaeili, H.; Saberi, M.; Sahebi, S.; Dobaradaran, S.; Ramavandi, B. Characteristics and performance of Cd, Ni, and Pb bio-adsorption using callinectes sapidus biomass: real wastewater treatment. Environmental Science and Pollution Research, 2019, 26(7),6336-6347. https://doi.org/10.1007/s11356-018-04108-8.

Rivero-Montejo, S.; Vargas H.; Torres-Pacheco, I. Nanoparticles as Novel Elicitors to Improve Bioactive Compounds in Plants. Agriculture, 2021,11(2),134. https://doi.org/10.3390/agriculture11020134.

Hadi, K.; Al- Saadi, T. Investigating the structural and magnetic properties of nickel oxide nanoparticles prepared by precipitation method. Ibn AL-Haitham Journal For Pure and Applied Sciences, 2022,35(4),94-103. https://doi.org/10.30526/35.4.2872.

Abdul-Ameer, Z. Novel Co-Precipitation method for synthesis of nanostructured nickel oxide in accordance to PH: Structural and optical properties as an active optical filter. Ibn AL-Haitham Journal For Pure and Applied Sciences, 2019, 32(1),1-6. https://doi.org/10.30526/32.1.1974.

Onukwuli, O.; Obiora-Okafo, I.; Omotioma, M. Characterization and colour removal from an aqueous solution using bio-coagulants: response surface methodological approach. Journal of Chemical Technology & Metallurgy, 2019,54(1),77-89.

https://journal.uctm.edu/node/j2019-1/1017198p7789.pdf.

Aziz, W.; Abd Urabe, A. Chemical preparation of iron oxide nanoparticles using plants extracts in antibacterial application. International Journal of Bioorganic Chemistry, 2019,4(1),1. https://doi.org/10.11648/j.ijbc.20190401.11.

Huang, Z.; Li, Y.; Chen, W.; Shi, J.; Zhang, N.; Wang, X.; Li, Z.; Gao, L.; Zhang, Y. Modified bentonite adsorption of organic pollutants of dye wastewater. Materials Chemistry and Physics, 2017, 202, 266-276. https://doi.org/10.1016/j.matchemphys.2017.09.028.

Al-Saade KAS, AL-Mammar DE, AL-Ani HN. Using phragmites australis (Iraqi plant) to remove the lead (II) ions form aqueous solution. Baghdad Science Journal, 2017,14(1),0148. https://doi.org/10.21123/bsj.2017.14.1.0148.

Abbas, A.M.; Mohammed, Y.I.; Himdan, T.A. Adsorption of anionic dye from equeous solution by modified synthetic zeolite. Ibn AL-Haitham Journal For Pure and Applied Sciences, 2017,28(2),52-68. https://jih.uobaghdad.edu.iq/index.php/j/article/view/177.

Mushtaq, M.; Bhatti, H.; Iqbal, M.; Noreen, S. Eriobotrya japonica seed biocomposite efficiency for copper adsorption: Isotherms, kinetics, thermodynamic and desorption studies. Journal of Environmental Management, 2016, 176(7), 21-33. https://doi.org/10.1016/j.jenvman.2016.03.013.

Lima, E.; Gomes, A.; Tran, H. Comparison of the nonlinear and linear forms of the van't Hoff equation for calculation of adsorption thermodynamic parameters (∆S° and ∆H°). Journal of Molecular Liquids, 2020, 311, 113315. https://doi.org/10.1016/j.molliq.2020.113315.

Liu, L.; Luo, X.; Ding, L.; Luo, S. Application of nanotechnology in the removal of heavy metal from water. In Nanomaterials for the Removal of Pollutants and Resource Reutilization, Elsevier: 2019; pp. 83-147. https://doi.org/10.1016/B978-0-12-814837-2.00004-4.

Yuh-Shan, H. Citation review of Lagergren kinetic rate equation on adsorption reactions. Scientometrics, 2004, 59(1),171-177. https://doi.org/10.1023/b:scie.0000013305.99473.cf.

Saxena, M.; Sharma, N.; Saxena, R. Highly efficient and rapid removal of a toxic dye: adsorption kinetics, isotherm, and mechanism studies on functionalized multiwalled carbon nanotubes. Surfaces and Interfaces, 2020, 21(2018),100639.

https://doi.org/10.1016/j.surfin.2020.100639.

Ho, Y. Using of pseudo-second-order model in adsorption. Environmental Science and Pollution Research, 2014, 21(11),7234-7235. https://doi.org/10.1007/s11356-013-2213-9.

Sabouri, Z.; Akbari, A.; Hosseini, H.; Darroudi, M. Facile green synthesis of NiO nanoparticles and investigation of dye degradation and cytotoxicity effects. Journal of Molecular Structure, 2018, 1173, 931-936. https://doi.org/10.1016/j.molstruc.2018.07.063.

Rashid, I.; Salman, S.; Kareem Mohammed, P.; Mahdi, Y. Green synthesis of nickle oxide nanoparticles for adsorption of dyes. Sains Malaysiana, 2022, 51(2),533-546. https://doi.org/ 10.17576/jsm-2022-5102-17.

Zheng, Y.; Zhu, B.; Chen, H.; You, W.; Jiang, C.; Yu, J. Hierarchical flower-like nickel (II) oxide microspheres with high adsorption capacity of Congo red in water. Journal of colloid and interface science, 2017, 504, 688-696. http://dx.doi.org/10.1016/j.jcis.2017.06.014.

Omar S.; Dunya E. Adsorption of Biebrich scarlet dye onto nano NiO and modified nano NiO: Isotherms, thermodynamic and kinetic studies. Journal of Survey in Fisheries Sciences, 2023, 10(3S) 3432-3441. https://doi.org/10.17762/sfs.v10i3S.1195.

Sonawane, S.; Chaudhari, P.; Ghodke, S.; Phadtare, S.; Meshram, S. Ultrasound assisted adsorption of basic dye onto organically modified bentonite (nanoclay). Journal of Scientific & Industrial Rese., 2009, 68(2),162-167. http://nopr.niscpr.res.in/handle/123456789/2915.

Khan, N.; Saeed, K.; Khan, I.; Gul, T.; Sadiq, M.; Khan, A.; Zekker, I. Efficient photodegradation of orange II dye by nickel oxide nanoparticles and nanoclay supported nickel oxide nanocomposite. Applied Water Science, 2022, 12(131),375-654. https://doi.org/10.1007/s13201-022-01647-x.

Pandian, C.; Palanivel, R.; Dhananasekaran, S. Green synthesis of nickel nanoparticles using Ocimum sanctum and their application in dye and pollutant adsorption. Chinese Journal of Chemical Engineering, 2015, 23(8),1307-1315. https://doi.org/10.1016/j.cjche.2015.05.012.

Sabouri, Z.; Akbari, A.; Hosseini, H.A.; Hashemzadeh, A.; Darroudi, M. Bio-based synthesized NiO nanoparticles and evaluation of their cellular toxicity and wastewater treatment effects. Journal of Molecular Structure, 2019,119(1),101-109. https://doi.org/10.1016/j.molstruc.2019.04.075.

Al-Shammari, N.; Al-Mammar, D. Adsorption of Biebrich Scarlet Dye into Remains Chromium and Vegetable Tanned Leather as Adsorbents. Iraqi Journal of Science, 2022,63(7),2814-2826. https://doi.org/10.24996/ijs.2022.63.7.6.

Al-Ghouti, M.; Da'ana, D. Guidelines for the use and interpretation of adsorption isotherm models: A review. Journal of hazardous materials, 2020, 393,122383. https://doi.org/10.1016/j.jhazmat.2020.122383.

Kadhim, H.; Saleh, K. Removing cobalt ions from industrial wastewater using chitosan. Iraqi

Journal of Science, 2022,63(8),3251-3263. https://doi.org/10.24996/ijs.2022.63.8.1.