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Geri Çekildi : TiO2 Katalizörü Kullanılarak Fotokatalitik Yöntemle Reactive Black 5 Boyarın Atık Sudan Giderimi

Yıl 2021, Cilt: 2 Sayı: 2, 98 - 105, 31.12.2021

Öz

Dergimiz cilt 2 sayı 2’de yayımlanan ‘‘Gezer, B., Gezer, R. & Gezer, C. (2021). Removal of Reactive Black 5
Dye from Waste Water by Photocatalytic Method Using TiO2 Catalyst. İleri Mühendislik Çalışmaları ve
Teknolojileri Dergisi, 2 (2), 98-105’’ çalışmasının sayfa numarası 101’de bulunan Figure 3. SEM image of TiO2
catalyst used in the experiment isimli görselin ‘‘M. Sarıoğlu Cebeci ve S. F. Selçuk, Atıksudan Fotokatalitik
Yöntemle Boya Giderimi Ve Mineralizasyon, Academic Platform - Journal of Engineering and Science, c. 8, sayı.
3, ss. 533- 539, Eyl. 2020, doi:10.21541/apjes.625338’’ çalışmasından kaynak gösterilmeksizin alındığı tespit
edilmiştir. Dergimizde 31.12.2021 tarihinde cilt 2 sayı 2’de yayımlanan Removal of Reactive Black 5 Dye from
Waste Water by Photocatalytic Method Using TiO2 Catalyst isimli çalışma, tespit edilen bilimsel çalışma etik
ilkelerine aykırılık nedeni ile 16.10.2022 tarihinde yayından geri çekilmiştir

Kaynakça

  • Couto S.R. (2009). Dye removal by immobilised fungi, Biotechnology Advances, 27(3), 227–235.
  • Crini G., Badot P.M. (2008). Application of chitosan, a natural aminopolysaccharide, for dye removal from aqueous solutions by adsorption processes using batch studies: A review of recent literature, Progress in Polymer Science, 33(4), 399–447.
  • Daneshvar N., Salari D., Khataee A. (2003). Photocatalytic degradation of azo dye acid red 14 in water: investigation of the effect of operational parameters, Journal of Photochemistry and Photobiology A: Chemistry, 157(1), 111–116.
  • Georgiou D., Melidis P., Aivasidis A., Gimouhopoulos K. Degradation of azo-reactive dyes by ultraviolet radiation in the presence of hydrogen peroxide, Dyes and Pigments, 52(2), 69–78.
  • Ghaedi M., Hajjati S., Mahmudi Z., Tyagi I., Agarwal S., Maity A., Gupta V. (2015). Modeling of competitive ultrasonic assisted removal of the dyes – Methylene blue and Safranin-O using Fe3O4 nanoparticles, Chemical Engineering Journal, 268, 28–37.
  • Guettaï N., Amar H.A. (2005). Photocatalytic oxidation of methyl orange in presence of titanium dioxide in aqueous suspension. Part I: Parametric study, Desalination, 185(1-3), 427–437.
  • Hamaloğlu K.Ö., Sağ E., Kip Ç., Şenlik E., Kaya B.S., Tuncel A. (2019). Magnetic-porous microspheres with synergistic catalytic activity of small-sized gold nanoparticles and titania matrix, Frontiers of Chemical Science and Engineering, 13(3), 574-585.
  • Kaneko M., Okura I. (2011). Photocatalysis: science and technology. Tokyo: Kodansha.
  • Lei X.F., Xue X.X., Yang H.H. (2014). Preparation and characterization of Ag-doped TiO2 nanomaterials and their photocatalytic reduction of Cr(VI) under visible ligh Applied Surface Science, 321, 396-403.
  • Li X., Dai X., Takahashi J., Li N., Jin J., Dai L., Dong B. (2014). New insight into chemical changes of dissolved organic matter during anaerobic digestion of dewatered sewage sludge using EEM-PARAFAC and two-dimensional FTIR correlation spectroscopy, Bioresource Technology, 159, 412-420.
  • Moradi M., Ghanbari F., Manshouri M., Angali K.A. (2015). Photocatalytic degradation of azo dye using nano-ZrO2/UV/Persulfate: Response surface modeling and optimization, Korean Journal of Chemical Engineering, 33(2), 539–546.
  • Nandhini N., Rajeshkumar S., Mythili S. (2019). The possible mechanism of eco-friendly synthesized nanoparticles on hazardous dyes degradation, Biocatalysis and Agricultural Biotechnology, 19, 101138.
  • Natarajan S., Bajaj H.C., Tayade R.J. (2018). Recent advances based on the synergetic effect of adsorption for removal of dyes from waste water using photocatalytic process, Journal of Environmental Sciences, 65, 201–222.
  • Neppolian B., Sakthivel S., Arabindoo B., Palanichamy M., Murugesan V. (1999). Degradation of textile dye by solar light using TiO2 and ZnO photocatalysts, Journal of Environmental Science and Health, Part A, 34(9), 1829-1838.
  • Ozdes D., Duran C., Senturk H.B. (2011). Adsorptive removal of Cd(II) and Pb(II) ions from aqueous solutions by using Turkish illitic clay, Journal of Environmental Management, 92, 3082-3090.
  • Özyonar F., Karagözoğlu B. (2012). Elektrokoagülasyon prosesi ile tekstil sanayi atiksuyunun aritimi, Erciyes Üniversitesi Fen Bilimleri Enstitüsü Dergisi, 28(1), 29-37.
  • Pan H., Feng J., He G.X., Cerniglia C.E., Chen H. (2012). Evaluation of impact of exposure of Sudan azo dyes and their metabolites on human intestinal bacteria, Anaerobe, 18(4), 445–453.
  • Petcu A.R., Lazar C.A., Rogozea E.A., Olteanu N.L., Meghea A., Mihaly M. (2016). Nonionic microemulsion systems applied for removal of ionic dyes mixtures from textile industry wastewaters, Separation and Purification Technology, 158, 155–159.
  • Ram C., Pareek R.K., Singh V. (2012). Photocatalytic degradation of textile dye by using titanium dioxide nanocatalyst, International Journal of Theoretical and Applied Sciences, 4(2), 82–88.
  • Sarayu K., Sandhya S. (2012). Current technologies for biological treatment of textile wastewater-a review, Applied Biochemical Biotechnolgy, 167(3), 645-661.
  • Shamraiz U., Hussain R.A., Badshah A., Raza B., Saba S. (2016). Functional metal sulfides and selenides for the removal of hazardous dyes from Water, Journal of Photochemistry and Photobiology B: Biology, 159, 33–41.
  • Sharaf El-Deen S. E.A., Zhang F.S. (2016). Immobilisation of TiO2-nanoparticles on sewage sludge and their adsorption for cadmium removal from aqueous solutions, Journal of Experimental Nanoscience, 11(4), 239-258.
  • Souza R.P., Freitas T.K., Domingues F.S., Pezoti O., Ambrosio E., Ferrari-Lima A.M., Garcia J.C. (2016). Photocatalytic activity of TiO2, ZnO and Nb2O5 applied to degradation of textile wastewater, Journal of Photochemistry and Photobiology A: Chemistry, 329, 9-17.
  • Vasei M., Das P., Cherfouth H., Marsan B., Claverie J.P. (2014). TiO2@C core-shell nanoparticles formed by polymeric nano-encapsulation, Frontiers in Chemistry, 2, 1-9.
  • Verma A.K., Dash R.R., Bhunia P. (2012). A review on chemical coagulation/flocculation technologies for removal of colour from textile wastewaters. Journal of Environmental Management, 93(1), 154-168.
  • Zhou Y., Lu J., Zhou Y., Liu Y. (2019). Recent advances for dyes removal using novel adsorbents: A review, Environmental Pollution, 252, 352–365.
  • Zhu X., Yuan C., Bao Y., Yang J., Wu Y. (2005). Photocatalytic degradation of pesticide pyridaben on TiO2 particles, Journal of Molecular Catalysis A: Chemical, 229(1-2), 95–105.

Geri Çekildi : Removal of Reactive Black 5 Dye from Waste Water by Photocatalytic Method Using TiO2 Catalyst

Yıl 2021, Cilt: 2 Sayı: 2, 98 - 105, 31.12.2021

Öz

Dergimiz cilt 2 sayı 2’de yayımlanan ‘‘Gezer, B., Gezer, R. & Gezer, C. (2021). Removal of Reactive Black 5
Dye from Waste Water by Photocatalytic Method Using TiO2 Catalyst. İleri Mühendislik Çalışmaları ve
Teknolojileri Dergisi, 2 (2), 98-105’’ çalışmasının sayfa numarası 101’de bulunan Figure 3. SEM image of TiO2
catalyst used in the experiment isimli görselin ‘‘M. Sarıoğlu Cebeci ve S. F. Selçuk, Atıksudan Fotokatalitik
Yöntemle Boya Giderimi Ve Mineralizasyon, Academic Platform - Journal of Engineering and Science, c. 8, sayı.
3, ss. 533- 539, Eyl. 2020, doi:10.21541/apjes.625338’’ çalışmasından kaynak gösterilmeksizin alındığı tespit
edilmiştir. Dergimizde 31.12.2021 tarihinde cilt 2 sayı 2’de yayımlanan Removal of Reactive Black 5 Dye from
Waste Water by Photocatalytic Method Using TiO2 Catalyst isimli çalışma, tespit edilen bilimsel çalışma etik
ilkelerine aykırılık nedeni ile 16.10.2022 tarihinde yayından geri çekilmiştir

Kaynakça

  • Couto S.R. (2009). Dye removal by immobilised fungi, Biotechnology Advances, 27(3), 227–235.
  • Crini G., Badot P.M. (2008). Application of chitosan, a natural aminopolysaccharide, for dye removal from aqueous solutions by adsorption processes using batch studies: A review of recent literature, Progress in Polymer Science, 33(4), 399–447.
  • Daneshvar N., Salari D., Khataee A. (2003). Photocatalytic degradation of azo dye acid red 14 in water: investigation of the effect of operational parameters, Journal of Photochemistry and Photobiology A: Chemistry, 157(1), 111–116.
  • Georgiou D., Melidis P., Aivasidis A., Gimouhopoulos K. Degradation of azo-reactive dyes by ultraviolet radiation in the presence of hydrogen peroxide, Dyes and Pigments, 52(2), 69–78.
  • Ghaedi M., Hajjati S., Mahmudi Z., Tyagi I., Agarwal S., Maity A., Gupta V. (2015). Modeling of competitive ultrasonic assisted removal of the dyes – Methylene blue and Safranin-O using Fe3O4 nanoparticles, Chemical Engineering Journal, 268, 28–37.
  • Guettaï N., Amar H.A. (2005). Photocatalytic oxidation of methyl orange in presence of titanium dioxide in aqueous suspension. Part I: Parametric study, Desalination, 185(1-3), 427–437.
  • Hamaloğlu K.Ö., Sağ E., Kip Ç., Şenlik E., Kaya B.S., Tuncel A. (2019). Magnetic-porous microspheres with synergistic catalytic activity of small-sized gold nanoparticles and titania matrix, Frontiers of Chemical Science and Engineering, 13(3), 574-585.
  • Kaneko M., Okura I. (2011). Photocatalysis: science and technology. Tokyo: Kodansha.
  • Lei X.F., Xue X.X., Yang H.H. (2014). Preparation and characterization of Ag-doped TiO2 nanomaterials and their photocatalytic reduction of Cr(VI) under visible ligh Applied Surface Science, 321, 396-403.
  • Li X., Dai X., Takahashi J., Li N., Jin J., Dai L., Dong B. (2014). New insight into chemical changes of dissolved organic matter during anaerobic digestion of dewatered sewage sludge using EEM-PARAFAC and two-dimensional FTIR correlation spectroscopy, Bioresource Technology, 159, 412-420.
  • Moradi M., Ghanbari F., Manshouri M., Angali K.A. (2015). Photocatalytic degradation of azo dye using nano-ZrO2/UV/Persulfate: Response surface modeling and optimization, Korean Journal of Chemical Engineering, 33(2), 539–546.
  • Nandhini N., Rajeshkumar S., Mythili S. (2019). The possible mechanism of eco-friendly synthesized nanoparticles on hazardous dyes degradation, Biocatalysis and Agricultural Biotechnology, 19, 101138.
  • Natarajan S., Bajaj H.C., Tayade R.J. (2018). Recent advances based on the synergetic effect of adsorption for removal of dyes from waste water using photocatalytic process, Journal of Environmental Sciences, 65, 201–222.
  • Neppolian B., Sakthivel S., Arabindoo B., Palanichamy M., Murugesan V. (1999). Degradation of textile dye by solar light using TiO2 and ZnO photocatalysts, Journal of Environmental Science and Health, Part A, 34(9), 1829-1838.
  • Ozdes D., Duran C., Senturk H.B. (2011). Adsorptive removal of Cd(II) and Pb(II) ions from aqueous solutions by using Turkish illitic clay, Journal of Environmental Management, 92, 3082-3090.
  • Özyonar F., Karagözoğlu B. (2012). Elektrokoagülasyon prosesi ile tekstil sanayi atiksuyunun aritimi, Erciyes Üniversitesi Fen Bilimleri Enstitüsü Dergisi, 28(1), 29-37.
  • Pan H., Feng J., He G.X., Cerniglia C.E., Chen H. (2012). Evaluation of impact of exposure of Sudan azo dyes and their metabolites on human intestinal bacteria, Anaerobe, 18(4), 445–453.
  • Petcu A.R., Lazar C.A., Rogozea E.A., Olteanu N.L., Meghea A., Mihaly M. (2016). Nonionic microemulsion systems applied for removal of ionic dyes mixtures from textile industry wastewaters, Separation and Purification Technology, 158, 155–159.
  • Ram C., Pareek R.K., Singh V. (2012). Photocatalytic degradation of textile dye by using titanium dioxide nanocatalyst, International Journal of Theoretical and Applied Sciences, 4(2), 82–88.
  • Sarayu K., Sandhya S. (2012). Current technologies for biological treatment of textile wastewater-a review, Applied Biochemical Biotechnolgy, 167(3), 645-661.
  • Shamraiz U., Hussain R.A., Badshah A., Raza B., Saba S. (2016). Functional metal sulfides and selenides for the removal of hazardous dyes from Water, Journal of Photochemistry and Photobiology B: Biology, 159, 33–41.
  • Sharaf El-Deen S. E.A., Zhang F.S. (2016). Immobilisation of TiO2-nanoparticles on sewage sludge and their adsorption for cadmium removal from aqueous solutions, Journal of Experimental Nanoscience, 11(4), 239-258.
  • Souza R.P., Freitas T.K., Domingues F.S., Pezoti O., Ambrosio E., Ferrari-Lima A.M., Garcia J.C. (2016). Photocatalytic activity of TiO2, ZnO and Nb2O5 applied to degradation of textile wastewater, Journal of Photochemistry and Photobiology A: Chemistry, 329, 9-17.
  • Vasei M., Das P., Cherfouth H., Marsan B., Claverie J.P. (2014). TiO2@C core-shell nanoparticles formed by polymeric nano-encapsulation, Frontiers in Chemistry, 2, 1-9.
  • Verma A.K., Dash R.R., Bhunia P. (2012). A review on chemical coagulation/flocculation technologies for removal of colour from textile wastewaters. Journal of Environmental Management, 93(1), 154-168.
  • Zhou Y., Lu J., Zhou Y., Liu Y. (2019). Recent advances for dyes removal using novel adsorbents: A review, Environmental Pollution, 252, 352–365.
  • Zhu X., Yuan C., Bao Y., Yang J., Wu Y. (2005). Photocatalytic degradation of pesticide pyridaben on TiO2 particles, Journal of Molecular Catalysis A: Chemical, 229(1-2), 95–105.
Toplam 27 adet kaynakça vardır.

Ayrıntılar

Birincil Dil İngilizce
Konular Mühendislik
Bölüm Araştırma Makaleleri
Yazarlar

Bahdisen Gezer 0000-0002-2096-7185

Rahşen Gezer Bu kişi benim 0000-0001-6147-059X

Can Gezer 0000-0001-5725-7681

Yayımlanma Tarihi 31 Aralık 2021
Gönderilme Tarihi 13 Aralık 2021
Kabul Tarihi 13 Aralık 2021
Yayımlandığı Sayı Yıl 2021 Cilt: 2 Sayı: 2

Kaynak Göster

APA Gezer, B., Gezer, R., & Gezer, C. (2021). Geri Çekildi : Removal of Reactive Black 5 Dye from Waste Water by Photocatalytic Method Using TiO2 Catalyst. İleri Mühendislik Çalışmaları Ve Teknolojileri Dergisi, 2(2), 98-105.
AMA Gezer B, Gezer R, Gezer C. Geri Çekildi : Removal of Reactive Black 5 Dye from Waste Water by Photocatalytic Method Using TiO2 Catalyst. imctd. Aralık 2021;2(2):98-105.
Chicago Gezer, Bahdisen, Rahşen Gezer, ve Can Gezer. “Geri Çekildi : Removal of Reactive Black 5 Dye from Waste Water by Photocatalytic Method Using TiO2 Catalyst”. İleri Mühendislik Çalışmaları Ve Teknolojileri Dergisi 2, sy. 2 (Aralık 2021): 98-105.
EndNote Gezer B, Gezer R, Gezer C (01 Aralık 2021) Geri Çekildi : Removal of Reactive Black 5 Dye from Waste Water by Photocatalytic Method Using TiO2 Catalyst. İleri Mühendislik Çalışmaları ve Teknolojileri Dergisi 2 2 98–105.
IEEE B. Gezer, R. Gezer, ve C. Gezer, “Geri Çekildi : Removal of Reactive Black 5 Dye from Waste Water by Photocatalytic Method Using TiO2 Catalyst”, imctd, c. 2, sy. 2, ss. 98–105, 2021.
ISNAD Gezer, Bahdisen vd. “Geri Çekildi : Removal of Reactive Black 5 Dye from Waste Water by Photocatalytic Method Using TiO2 Catalyst”. İleri Mühendislik Çalışmaları ve Teknolojileri Dergisi 2/2 (Aralık 2021), 98-105.
JAMA Gezer B, Gezer R, Gezer C. Geri Çekildi : Removal of Reactive Black 5 Dye from Waste Water by Photocatalytic Method Using TiO2 Catalyst. imctd. 2021;2:98–105.
MLA Gezer, Bahdisen vd. “Geri Çekildi : Removal of Reactive Black 5 Dye from Waste Water by Photocatalytic Method Using TiO2 Catalyst”. İleri Mühendislik Çalışmaları Ve Teknolojileri Dergisi, c. 2, sy. 2, 2021, ss. 98-105.
Vancouver Gezer B, Gezer R, Gezer C. Geri Çekildi : Removal of Reactive Black 5 Dye from Waste Water by Photocatalytic Method Using TiO2 Catalyst. imctd. 2021;2(2):98-105.