Análisis comparativo de la reducción de Cr(VI) con Cu2O, ZnO y Fe2O3 crecidos por OEP

Autores/as

DOI:

https://doi.org/10.17533/udea.redin.20230418

Palabras clave:

Oxidación electrolítica con plasma, Cu2O, ZnO, Fe2O3, fotoreducción de Cr(VI)

Resumen

Se fabricaron recubrimientos sobre sustratos de cobre, zinc y acero inoxidable mediante la técnica de oxidación electrolítica con plasma (OEP) y se evaluó su actividad fotocatalítica en la reducción del Cr(VI), un agente altamente tóxico presente en las aguas residuales de procesos industriales como la galvanoplastia, la fabricación de tintes textiles, el curtido de la madera y el curtido del cuero. La concentración de cromo hexavalente en el agua potable se ha regulado hasta un valor máximo establecido por la legislación nacional e internacional de 0,05 ppm. La estrategia de reducción a especies menos tóxicas como el Cr(III), seguida de su precipitación en un medio básico fundamenta varios métodos de la química, la física y la biología para el tratamiento del agua contaminada con este material. En el presente trabajo, se obtuvieron recubrimientos de óxidos de cobre, zinc y hierro sobre las correspondientes láminas expuestas a OEP, que se ensayaron en un proceso heterogéneo de oxidación avanzada con una solución de 1 ppm de Cr(VI) bajo radiación ultravioleta. Así, se obtuvo una tasa de reducción a Cr(III) cercana al 100 % en 60 min.

|Resumen
= 504 veces | PDF (ENGLISH)
= 257 veces| | HTML (ENGLISH)
= 0 veces|

Descargas

Los datos de descargas todavía no están disponibles.

Biografía del autor/a

Fernando Gordillo Delgado, Universidad del Quindío

Doctorado, Facultad de Ciencias Básicas y Tecnología 

 

John Alexander García Giraldo, Universidad del Quindío

Ingeniero Electrónico, Instituto Interdisciplinar de Ciencia 

Citas

S. Aliasghari, P. Skeldon, and G. E.Thompson, “Plasma electrolytic oxidation of titanium in a phosphate/ silicate electrolyte and tribological performance of the coatings,” Applied Surface Science, vol. 316, Oct. 15, 2014. [Online]. Available: https://doi.org/10.1016/j.apsusc.2014.08.037

K. C. Tekin, U. Malayoglu, and S. Shrestha, “Tribological properties of plasma electrolytic oxide coatings on magnesium alloys,” Tribology - Materials, Surfaces and Interfaces, vol. 6, no. 2, 2012. [Online]. Available: https://doi.org/10.1179/1751584X12Y.0000000006.

F. Gordillo-Delgado, S. Moya-Betancur, A. Parra-López, J. García-Giraldo, and D. Torres-Cerón, “S-incorporated TiO2 coatings grown by plasma electrolytic oxidation for reduction of Cr(vi)-EDTA with sunlight,” Environmental Science and Pollution Research, vol. 26, Feb. 20, 2019. [Online]. Available: https://doi.org/10.1007/s11356-018-2695-6

(n.d.) Zinc price. Markets Insider. [Online]. Available: https://markets.businessinsider.com/commodities/zinc-price

(n.d.) Cooper price. Markets Insider. [Online]. Available: https://markets.businessinsider.com/commodities/copper-price

(n.d.) 304/304l stainless steel plates. Savoy Piping Inc. [Online]. Available: https://www.savoypipinginc.com/stainless-steel-plates-sheet-type/304-304l-stainless-steel-plates-stockholder-supplier-dual-grade. Html

(n.d.) Tin price. Markets Insider. [Online]. Available: https://markets.businessinsider.com/commodities/tin-price

S. M. Kumar, J. Youngjoo, K. Jongmin, K. Hyungtae, and J. J. Pil, “Plasma electrolytic oxidation in surface modification of metals for electronics,” Journal of Welding and Joining, vol. 32, no. 3, Jun. 30, 2014. [Online]. Available: https://doi.org/10.5781/JWJ.2014.32.3.27

V. Dehnavia, B. LiLuan, D. W. Shoesmith, X. Y. Liu, and S. Rohani, “Effect of duty cycle and applied current frequency on plasma electrolytic oxidation (PEO) coating growth behavior,” Surface and Coatings Technology, vol. 226, Jul. 15, 2013. [Online]. Available: https://doi.org/10.1016/j.surfcoat.2013.03.041

M. Kaseem, S. Fatimah, N. Nashrah, and Y. GunKob, “Recent progress in surface modification of metals coated by plasma electrolytic oxidation: Principle, structure, and performance,” Progress in materials science, vol. 117, Apr. 2021. [Online]. Available: https://doi.org/10.1016/j.pmatsci.2020.100735

C. Oduoza, E. Khan, and T. Sihra, “Chromium electroplating of aluminium alloys using electroless nickel as underlayer,” Journal of Materials Science and Chemical Engineering, vol. 7, no. 2, Jul. 2014. [Online]. Available: https://doi.org/10.4236/msce.2014.27007

F. C. Izzo, K. J. V. den Berg, H. V. Keulen, B. Ferriani, and E. Zendri, “Modern oil paints– formulations, organic additives and degradation: some case studies,” in Issues in contemporary oil paint, C. Springer, Ed. Suiza, CH: Springer, 2014, pp. 75–104.

A. L. Tasca and M. Puccini, “Leather tanning: Life cycle assessment of retanning, fatliquoring and dyeing,” Journal of Cleaner Production, vol. 226, Jul.20, 2019. [Online]. Available: https://doi.org/10.1016/j.jclepro.2019.03.335

Hansen, P. Aquim, and M. Gutterres, “Environmental assessment of water, chemicals and effluents in leather post-tanning process: A review,” Environmental Impact Assessment Review, vol. 89, Jul. 2021. [Online]. Available: https://doi.org/10.1016/j.eiar.2021.106597

C. C. Álvarez, M. E. B. Gómez, and A. H. Zavala, “Hexavalent chromium: Regulation and health effects,” Journal of Trace Elements in Medicine and Biology, vol. 65, no. 126729, May. 2021. [Online]. Available: https://doi.org/10.1016/j.jtemb.2021.126729

T. L. DesMarias and M. Costa, “Mechanisms of chromium-induced toxicity,” Current Opinion in Toxicology, vol. 14, Apr. 2019. [Online]. Available: https://doi.org/10.1016/j.cotox.2019.05.003

R. Saha, R. Nandi, and B. Saha, “Sources and toxicity of hexavalent chromium,” Journal of Coordination Chemistry, vol. 64, no. 10, May. 2011. [Online]. Available: https://doi.org/10.1080/00958972.2011.583646

J. Wang, S. Zhao, Z. Ling, T. Zhou, P. Liu, and et al., “Enhanced removal of trivalent chromium from leather wastewater using engineered bacteria immobilized on magnetic pellets,” Science of The Total Environment, vol. 775, no. 145647, Jun. 25 2021. [Online]. Available: https://doi.org/10.1016/j.scitotenv.2021.145647

S. Mishra, S. Chen, G. D. Saratale, R. G. Saratale, L. F. R. Ferreira, and /textitet al., “Reduction of hexavalent chromium by microbacterium paraoxydans isolated from tannery wastewater and characterization of its reduced products,” Journal of Water Process Engineering, vol. 39, no. 101748, Feb. 2021. [Online]. Available: https://doi.org/10.1016/j.jwpe.2020.101748

S. S. Kerur, S. Bandekar, M. S. Hanagadakar, S. S. Nandi, G. M. Ratnamala, and /textitet al., “Removal of hexavalent chromium-industry treated water and wastewater: A review,” Materials Today: Proceedings, vol. 42, no. 2, Mar. 2021. [Online]. Available: https://doi.org/10.1016/j.matpr.2020.12.492

M. Aliofkhazraei, A. S. Rouhaghdam, and P. Gupta, “Nano-fabrication by cathodic plasma electrolysis,” Critical Reviews in Solid State and Materials Sciences, vol. 36, no. 3, Sep. 2, 2011. [Online]. Available: https://doi.org/10.1080/10408436.2011.593269

W. Gui, J. Lin, G. Hao, Y. Qu, Y. Liang, and et al., “Electrolytic plasma processing-an innovative treatment for surface modification of 304 stainless steel,” Scientific Reports, vol. 7, no. 308, Mar. 22, 2017. [Online]. Available: https://doi.org/10.1038/s41598-017-00204-w

H. G. Jiang, M. Rühle, and E. J. Lavernia, “On the applicability of the x-ray diffraction line profile analysis in extracting grain size and microstrain in nanocrystalline materials,” Journal of Materials Research, vol. 14, no. 22, pp. 549–559, 1999.

M. Birkholz, Thin film analysis by X-ray scattering. John Wiley& Sons, 2006.

A. Apha, Standard methods for the examination of water and wastewater, 23rd ed. Washington, DC: American Public Health Association and American Water Works Association and Water Environment Federation, 2007.

M. Pirhashemi and A. H. Yangjeh, “Simple and large scale one-pot method for preparation of AgBr–ZnO nanocomposites as highly efficient visible light photocatalyst,” Applied Surface Science, vol. 283, pp. 1080–1088, Oct. 2013.

T. Theivasanthi and M. Alagar, “X-ray diffraction studies of copper nanopowder,” Archives of Physics Research, vol. 1, no. 2, pp. 112–117, Mar. 2010.

S. F. Shaffiey, M. Shapoori, A. Bozorgnia, and M. H. Ahmadi, “Synthesis and evaluation of bactericidal properties of cuo nanoparticles against aeromonas hydrophila,” Nanomedicine Journal, vol. 1, no. 3, pp. 198–204, Apr. 2014.

N. G. Elfadill, M. R. Hashim, K. M. Chahrour, M. A. Qaeed, and W. Chunsheng, “The influence of oxygen pressure on the growth of CuO nanostructures prepared by rf reactive magnetron sputtering,” Journal of Materials Science: Materials in Electronics, vol. 25, no. 1, Jan. 2014. [Online]. Available: https://doi.org/10.1007/s10854-013-1581-8

A. K. Zak, R. Razali, W. A. Majid, and M. Darroudi, “Synthesis and characterization of a narrow size distribution of zinc oxide nanoparticles,” International Journal of Nanomedicine, vol. 6, pp. 1399–1403, Jul. 2011.

D. D. Arhin, E. E. Mbu, S. K. Ntwampe, E. N. Malenga, E. F. Kankeu, and et al., “Synthesis of nanostructured cupric oxide for visible light assisted degradation of organic wastewater pollutants,” Cogent Engineering, vol. 8, no. 1, 2021. [Online]. Available: https://doi.org/10.1080/23311916.2021.1920563

A. Khataeeand, D. Kalderis, P. YekanMotlagh, V. Binas, and S. Stefaet al., “Synthesis of copper (i, ii) oxides/hydrochar nanocomposites for the efficient sonocatalytic degradation of organic contaminants,” Journal of Industrial and Engineering Chemistry, vol. 95, Mar. 25, 2021. [Online]. Available: https://doi.org/10.1016/j.jiec.2020.12.006

S. Talam, S. R. Karumuri, and N. Gunnam, “Synthesis, characterization and spectroscopic properties of zno nanoparticles,” ISRN Nanotechnology, 2012. [Online]. Available: https://doi.org/10.5402/2012/372505

S. Stojadinović, N. Tadić, and R. Vasilić, “Formation and characterization of ZnO films on zinc substrate by plasma electrolytic oxidation,” Surface and Coatings Technology, vol. 307, Dec. 15, 2016. [Online]. Available: https://doi.org/10.1016/j.surfcoat.2016.09.080

V. Srikant and D. R. Clarke, “On the optical band gap of zinc oxide,” Journal of Applied Physics, vol. 83, no. 10, 1998. [Online]. Available: https://doi.org/10.1063/1.367375

A. Janotti and C. G. V. de Walle, “Fundamentals of zinc oxide as a semiconductor,” Reports on Progress in Physics, vol. 72, no. 12, Oct. 22, 2009. [Online]. Available: https://doi.org/10.1088/0034-4885/72/12/126501

S. P. Schwaminger, R. Surya, S. Filser, A. Wimmer, F. Weigl, and et al., “Formation of iron oxide nanoparticles for the photooxidation of water: Alteration of finite size effects from ferrihydrite to hematite,” Scientific Reports, vol. 7, no. 1, Oct. 13, 2017. [Online]. Available: https://doi.org/10.1038/s41598-017-12791-9

S. Bakardjieva, V. Stengl, J. Subrt, V. Houskova, and P. Kalenda, “Photocatalytic efficiency of iron oxides: degradation of 4-chlorophenol,” Journal of Physics and Chemistry of Solids, vol. 68, no. 5-6, 2007. [Online]. Available: https://doi.org/10.1016/j.jpcs.2006.12.004

M. M. Rafi, K. S. Zameer, K. PremNazeer, and D. S. Kumar, “Antibacterial activity of iron oxide nanoparticles on polysaccharide templates: synthesis, characterization and magnetic studies,” Malasyan Polymer Journal, vol. 10, no. 1, pp. 16–22, 2015.

A. Hosseinian, H. Rezaei, and A. R. Mahjoub, “Preparation of nanosized iron oxide and their photocatalytic properties for congo red,” World Academy of Science, Engineering and Technology, vol. 52, no. 4, pp. 736–739, 2011.

K. A. Habib, M. S. Damra, J. J. Saura, I. Cervera, and J. Belles, “Breakdown and evolution of the protective oxide scales of aisi 304 and aisi 316 stainless steels under high-temperature oxidation,” International Journal of Corrosion, vol. 2011, 2011. [Online]. Available: https://doi.org/10.1155/2011/824676

X. Jin, L. Che, J. Yu, R. Liu, W. Xue, and et al., “Temperature measurement and OES analysis during CPEO on stainless steel,” Surface and Coatings Technology, vol. 363, Apr. 15, 2019. [Online]. Available: https://doi.org/10.1016/j.surfcoat.2019.02.013

J. Wu, L. Dong, J. Deng, D. Hou, G. Li, and et al., “Direct growth of oxide layer on carbon steel by cathodic plasma electrolysis,” Surface and Coatings Technology, vol. 338, Mar. 25, 2018. [Online]. Available: https://doi.org/10.1016/j.surfcoat.2018.01.080

E. V. Partenov, A. Yerokhin, R. R. Nevyantseva, M. V. Gorbatkov, C. J. Liang, and et al., “Towards smart electrolytic plasma technologies: An overview of methodological approaches to process modelling,” Surface and Coatings Technology, vol. 269, May. 15, 2015. [Online]. Available: https://doi.org/10.1016/j.surfcoat.2015.02.019

J. L. Marulanda, S. I. Castañeda, and F. J. Perez, “Study microstructure and composition of oxidation in steam at 700 and 750°c of austenitic steels aisi 304, 316 and 317,” Revista Facultad de Ingenieria Universidad de Antioquia, no. 67, pp. 98–111, 2013.

A. Top and H. Çetinkaya, “Zinc oxide and zinc hydroxide formation via aqueous precipitation: Effect of the preparation route and lysozyme addition,” Materials Chemistry and Physics, vol. 167, Nov. 1, 2015. [Online]. Available: https://doi.org/10.1016/j.matchemphys.2015.10.013

Q. Q. Xu, S. W. Qiu, X. Y. Xing, Z. H. Wang, Y. T. Li, and et al., “Tuning the morphology of ZnO nanoparticles by Zn-clusters and application on the photoreduction of Cr(vi),” Solid State Sciences, vol. 58, Aug. 2016. [Online]. Available: https://doi.org/10.1016/j.solidstatesciences.2016.05.010

X. Dou, C. Zhang, and H. Shi, “The simultaneous promotion of Cr (vi) photoreduction and tetracycline removal over 3d/2d Cu2O/biobr s-scheme nanostructures,” Separation and Purification Technology, vol. 282, Feb. 1, 2022. [Online]. Available: https://doi.org/10.1016/j.seppur.2021.120023

T. Y. Liu, L. Zhao, X. Tan, S. J. Liu, J. J. Li, and et al., “Effects of physicochemical factors on Cr(vi) removal from leachate by zero-valent iron and alpha-Fe(2)O(3) nanoparticles,” Water Sci Technol, vol. 61, no. 11, Jun. 10, 2010. [Online]. Available: https://doi.org/10.2166/wst.2010.167

T. Ge, Z. Jiang, L. Shen, J. Li, Z. Lu, and et al., “Synthesis and application of Fe3O4/FeWO4 composite as an efficient and magnetically recoverable visible light-driven photocatalyst for the reduction of Cr(vi),” Separation and Purification Technology, vol. 263, May. 15, 2021. [Online]. Available: https://doi.org/10.1016/j.seppur.2021.118401

Publicado

2023-04-19

Cómo citar

Gordillo Delgado, F., & García Giraldo, J. A. (2023). Análisis comparativo de la reducción de Cr(VI) con Cu2O, ZnO y Fe2O3 crecidos por OEP. Revista Facultad De Ingeniería Universidad De Antioquia, (110), 65–76. https://doi.org/10.17533/udea.redin.20230418

Número

Sección

Artículo de investigación