Araştırma Makalesi

Effectively Removing Methyl Orange From Aqueous Solutions Using Sulphuric Acid Modified Midyat Stone

Cilt: 14 Sayı: 3 1 Eylül 2024
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Effectively Removing Methyl Orange From Aqueous Solutions Using Sulphuric Acid Modified Midyat Stone

Öz

In this research, the efficiency of Midyat stone modified with sulphuric acid (H2SO4) in the removal of Methyl Orange (MO) from wastewater is evaluated. Various factors such as contact time, initial MO concentration, and adsorbent dosage were investigated to understand their influence on adsorption efficiency. The optimal conditions for MO removal were as follows: initial concentration 300 mg/L, contact time 70 min, adsorbent dosage 0.5 g. The surface properties of modified Midyat stone (MMS) were investigated using methods such as Fourier transform infrared spectroscopy (FT-IR) and Brunauer, Emmett, and Teller (BET). According to the findings, the isotherm data agreed with the Langmuir isotherm model, indicating both chemical sorption and irreversibility potential. The adsorption capacity of MO at 298, 308 and 318 K was calculated to be 50.02, 54.05 and 58.48 mg/g, respectively. In addition, adsorption kinetics data supported the pseudo-second-order (PSO) kinetic model for MO removal. The research identified MMS as a capable and adaptable substance for capturing MO ions from the aqueous environment due to its significant removal capacity, easy availability, and cost-effectiveness.

Anahtar Kelimeler

Kaynakça

  1. Akpomie, K. G., Dawodu, F. A., & Adebowale, K. O. (2015). Mechanism on the sorption of heavy metals from binary-solution by a low cost montmorillonite and its desorption potential. Alexandria Engineering Journal, 54(3), 757-767.
  2. Altunkaynak, Y. (2022). Effectively removing Cu (II) and Ni (II) ions from aqueous solutions using chemically non-processed Midyat stone: equivalent, kinetic and thermodynamic studies. Journal of the Iranian Chemical Society, 19(8), 3357-3370.
  3. Altunkaynak, Y. (2023). Using chemically unprocessed orange peel to effectively remove Hg (II) ions from aqueous solutions: equivalent, thermodynamic, and kinetic investigations. Sakarya University Journal of Science, 27(1), 189-203.
  4. Altunkaynak, Y., & Canpolat, M. (2022). Ham Portakal Kabuğu ile Sulu Çözeltilerden Mangan (II) İyonlarının Uzaklaştırılması: Denge, Kinetik ve Termodinamik Çalışmalar. Afyon Kocatepe Üniversitesi Fen Ve Mühendislik Bilimleri Dergisi, 22(1), 45-56.
  5. Altunkaynak, Y., Canpolat, M., & Aslan, M. (2023). Adsorption of lead (II) ions on kaolinite from aqueous solutions: isothermal, kinetic, and thermodynamic studies. Ionics, 29(10), 4311-4323.
  6. Bakalár, T., Kaňuchová, M., Girová, A., Pavolová, H., Hromada, R., & Hajduová, Z. (2020). Characterization of Fe (III) adsorption onto zeolite and bentonite. International Journal of Environmental Research and Public Health, 17(16), 5718.
  7. Canpolat, M. (2023). Removing Co (II) and Mn (II) ions effectively from aqueous solutions by means of chemically non‐processed Mardin stone waste: Equivalent, kinetic, and thermodynamic investigations. Environmental Progress & Sustainable Energy, 42(3), e14042.
  8. Canpolat, M., & Topal, G. (2023). Synthesis, characterization of cross‐linked poly (ethylene glycol dimethacrylate‐methyl methacrylate‐N‐(1‐phenylethyl) acrylamide) copolymer and removal of copper (II), cobalt (II) ions from aqueous solutions via this copolymer. Environmental Progress & Sustainable Energy, 42(6), e14197.

Ayrıntılar

Birincil Dil

İngilizce

Konular

Separasyon Bilimi

Bölüm

Araştırma Makalesi

Erken Görünüm Tarihi

27 Ağustos 2024

Yayımlanma Tarihi

1 Eylül 2024

Gönderilme Tarihi

27 Mayıs 2024

Kabul Tarihi

14 Haziran 2024

Yayımlandığı Sayı

Yıl 2024 Cilt: 14 Sayı: 3

Kaynak Göster

APA
Canpolat, M. (2024). Effectively Removing Methyl Orange From Aqueous Solutions Using Sulphuric Acid Modified Midyat Stone. Journal of the Institute of Science and Technology, 14(3), 1218-1227. https://doi.org/10.21597/jist.1490644
AMA
1.Canpolat M. Effectively Removing Methyl Orange From Aqueous Solutions Using Sulphuric Acid Modified Midyat Stone. Iğdır Üniv. Fen Bil Enst. Der. 2024;14(3):1218-1227. doi:10.21597/jist.1490644
Chicago
Canpolat, Mutlu. 2024. “Effectively Removing Methyl Orange From Aqueous Solutions Using Sulphuric Acid Modified Midyat Stone”. Journal of the Institute of Science and Technology 14 (3): 1218-27. https://doi.org/10.21597/jist.1490644.
EndNote
Canpolat M (01 Eylül 2024) Effectively Removing Methyl Orange From Aqueous Solutions Using Sulphuric Acid Modified Midyat Stone. Journal of the Institute of Science and Technology 14 3 1218–1227.
IEEE
[1]M. Canpolat, “Effectively Removing Methyl Orange From Aqueous Solutions Using Sulphuric Acid Modified Midyat Stone”, Iğdır Üniv. Fen Bil Enst. Der., c. 14, sy 3, ss. 1218–1227, Eyl. 2024, doi: 10.21597/jist.1490644.
ISNAD
Canpolat, Mutlu. “Effectively Removing Methyl Orange From Aqueous Solutions Using Sulphuric Acid Modified Midyat Stone”. Journal of the Institute of Science and Technology 14/3 (01 Eylül 2024): 1218-1227. https://doi.org/10.21597/jist.1490644.
JAMA
1.Canpolat M. Effectively Removing Methyl Orange From Aqueous Solutions Using Sulphuric Acid Modified Midyat Stone. Iğdır Üniv. Fen Bil Enst. Der. 2024;14:1218–1227.
MLA
Canpolat, Mutlu. “Effectively Removing Methyl Orange From Aqueous Solutions Using Sulphuric Acid Modified Midyat Stone”. Journal of the Institute of Science and Technology, c. 14, sy 3, Eylül 2024, ss. 1218-27, doi:10.21597/jist.1490644.
Vancouver
1.Mutlu Canpolat. Effectively Removing Methyl Orange From Aqueous Solutions Using Sulphuric Acid Modified Midyat Stone. Iğdır Üniv. Fen Bil Enst. Der. 01 Eylül 2024;14(3):1218-27. doi:10.21597/jist.1490644