Contaminantes emergentes farmacéuticos: impactos, métodos alternativos de determinación y tecnologías limpias para su remoción. Título del capítulo: 12. Oxidación electroquímica para el tratamiento de antibióticos en cuerpos de agua
| dc.contributor.advisor | Cabeza Rojas, Iván Orlando | |
| dc.contributor.author | González Sánchez, Danna Camila | |
| dc.contributor.corporatename | Institución Universitaria Politécnico Grancolombiano | spa |
| dc.contributor.corporatename | Universidad Santo Tomás | spa |
| dc.contributor.googlescholar | https://scholar.google.es/citations?user=96vN0jsAAAAJ&hl=es | |
| dc.date.accessioned | 2021-04-23T14:35:22Z | |
| dc.date.available | 2021-04-23T14:35:22Z | |
| dc.date.issued | 2021-04-22 | |
| dc.description | Una de las más grandes preocupaciones de la sociedad actual es la calidad del agua en sus diferentes formas (aguas residuales, agua potable, cuerpos de agua), junto con el tratamiento que se les debería de dar. Pero algo poco tomado en cuenta es la presencia de contaminantes emergentes farmacéuticos en cuerpos de agua, más específicamente antibióticos, lo cuales pueden llevar a impactos ambientales negativos graves, desde provocar enfermedades no curables en fauna, hasta poder tener los mismos efectos en la salud humana. Para evitar esto se presenta el proceso electroquímico de Oxidación Electroquímica o Electrooxidación (EO) el cual, según múltiples estudios, puede degradar hasta en un 100% este tipo de fármacos, en aguas residuales, disminuyendo su concentración aguas abajo. | spa |
| dc.description.abstract | 787 / 5000 Resultados de traducción One of the greatest concerns of today's society is the quality of water in its different forms (wastewater, drinking water, bodies of water), along with the treatment that should be given to them. But something little taken into account is the presence of emerging pharmaceutical pollutants in water bodies, more specifically antibiotics, which can lead to serious negative environmental impacts, from causing non-curable diseases in fauna, to being able to have the same effects on human health. To avoid this, the electrochemical process of Electrochemical Oxidation or Electrooxidation (EO) is presented, which, according to multiple studies, can degrade this type of drug by up to 100% in wastewater, reducing its concentration downstream. | spa |
| dc.description.degreelevel | Pregrado | spa |
| dc.description.degreename | Ingeniero Ambiental | spa |
| dc.description.domain | http://unidadinvestigacion.usta.edu.co | spa |
| dc.format.mimetype | application/pdf | |
| dc.identifier.citation | González-Sánchez, D. C. (2021). Contaminantes emergentes farmacéuticos: impactos, métodos alternativos de determinación y tecnologías limpias para su remoción. Título del capítulo: 12. Oxidación electroquímica para el tratamiento de antibióticos en cuerpos de agua. [Trabajo de pregrado, Universidad Santo Tomás]. Repositorio Institucional. | spa |
| dc.identifier.instname | instname:Universidad Santo Tomás | spa |
| dc.identifier.reponame | reponame:Repositorio Institucional Universidad Santo Tomás | spa |
| dc.identifier.repourl | repourl:https://repository.usta.edu.co | spa |
| dc.identifier.uri | http://hdl.handle.net/11634/33733 | |
| dc.language.iso | spa | |
| dc.publisher | Universidad Santo Tomás | spa |
| dc.publisher.branch | CRAI-USTA Bogotá | spa |
| dc.publisher.faculty | Facultad de Ingeniería Ambiental | spa |
| dc.publisher.program | Pregrado de Ingeniería Ambiental | spa |
| dc.relation.references | Ahmed Basha, C., Soloman, P. A., Velan, M., Miranda, L. R., Balasubramanian, N., & Siva, R. (2010). Electrochemical degradation of specialty chemical industry effluent. Journal of Hazardous Materials, 176(1), 154-164. doi:10.1016/j.jhazmat.2009.10.131 | spa |
| dc.relation.references | Antonin, V. S., Santos, M. C., Garcia-Segura, S., & Brillas, E. (2015). Electrochemical incineration of the antibiotic ciprofloxacin in sulfate medium and synthetic urine matrix. Water Research, 31-41. doi: 10.1016/j.watres.2015.05.0668 | spa |
| dc.relation.references | Bian, X., Xia, Y., Zhan, T., Wang, L., Zhou, W., Dai, Q., & Chen, J. (2019). Electrochemical removal of amoxicillin using a cu doped PbO2 electrode: Electrode characterization, operational parameters optimization and degradation mechanism. Chemosphere (Oxford), 233, 762-770. doi:10.1016/j.chemosphere.2019.05.226 | spa |
| dc.relation.references | Brillas, E., & Martínez-Huitle, C. A. (2015). Decontamination of wastewaters containing synthetic organic dyes by electrochemical methods. an updated review. Applied Catalysis. B, Environmental, 166-167, 603-643. doi:10.1016/j.apcatb.2014.11.016 | spa |
| dc.relation.references | Cañizares, P., Beteta, A., Sáez, C., Rodríguez, L., & Rodrigo, M. A. (2008). Use of electrochemical technology to increase the quality of the effluents of bio-oxidation processes. A case studied. Chemosphere, | spa |
| dc.relation.references | Carlesi Jara, C., Fino, D., Specchia, V., Saracco, G., & Spinelli, P. (2007). Electrochemical removal of antibiotics from wastewaters. Applied Catalysis. B, Environmental, 70(1-4), 479-487. doi:10.1016/j.apcatb.2005.11.035 | spa |
| dc.relation.references | Dai, Q., Zhou, J., Weng, M., Luo, X., Feng, D., & Chen, J. (2016). Electrochemical oxidation metronidazole with co modified PbO2 electrode: Degradation and mechanism. Separation and Purification Technology, 166, 109-116. doi:10.1016/j.seppur.2016.04.028 | spa |
| dc.relation.references | Duan, P., Gao, S., Lei, J., Li, X., & Hu, X. (2020). Electrochemical oxidation of ceftazidime with graphite/CNT-ce/PbO2–Ce anode: Parameter optimization, toxicity analysis and degradation pathway. Environmental Pollution (1987), 263, 114436. doi:10.1016/j.envpol.2020.114436 | spa |
| dc.relation.references | Feng, L., Van Hullebusch, E. D., Rodrigo, M. A., Esposito, G., & Oturan, M. A. (2013). Removal of residual anti-inflammatory and analgesic pharmaceuticals from aqueous systems by advanced oxidation processes. Chemical Engineering Journal, 228, 944-964 | spa |
| dc.relation.references | Ferreira, M., Kuzniarska-Biernacka, I., Fonseca, A. M., Neves, I. C., Soares, O. S. G. P., Pereira, M. F. R., . . . Parpot, P. (2019). Electrochemical oxidation of amoxicillin on carbon nanotubes and carbon nanotube supported metal modified electrodes. Catalysis Today, doi:10.1016/j.cattod.2019.06.039 | spa |
| dc.relation.references | Frontistis, Z., Mantzavinos, D., & Meriç, S. (2018). Degradation of antibiotic ampicillin on boron-doped diamond anode using the combined electrochemical oxidation - sodium persulfate process. Journal of Environmental Management, 223, 878-887. doi:10.1016/j.jenvman.2018.06.099 | spa |
| dc.relation.references | García-Espinoza, J. D., Mijaylova-Nacheva, P., & Avilés-Flores, M. (2018). Electrochemical carbamazepine degradation: Effect of the generated active chlorine, transformation pathways and toxicity. Chemosphere (Oxford), 192, 142-151. doi:10.1016/j.chemosphere.2017.10.147 | spa |
| dc.relation.references | Garcia-Segura, S., Ocon, J. D., & Chong, M. N. (2018). Electrochemical oxidation remediation of real wastewater effluents — A review. Process Safety and Environmental Protection, 113, 48-67. doi:10.1016/j.psep.2017.09.014 | spa |
| dc.relation.references | Giraldo Aguirre, A. L., Erazo Erazo, E. D., Flórez Acosta, O. A., Serna Galvis, E. A., & Torres Palma, R. A. (2016). Tratamiento electroquímico de aguas que contienen antibióticos β-lactámicos. Ciencia En Desarrollo, 7(1), 21-29. doi:10.19053/01217488.4227 | spa |
| dc.relation.references | Hu, J., Bian, X., Xia, Y., Weng, M., Zhou, W., & Dai, Q. (2020). Application of response surface methodology in electrochemical degradation of amoxicillin with cu-PbO2 electrode: Optimization and mechanism. Separation and Purification Technology, | spa |
| dc.relation.references | Hughes, S. R., Kay, P., & Brown, L. E. (2013). Global synthesis and critical evaluation of pharmaceutical data sets collected from river systems. Environmental Science & Technology, 47(2), 661-677. doi:10.1021/es3030148 | spa |
| dc.relation.references | Kanakaraju, D., Glass, B. D., & Oelgemöller, M. (2018). Advanced oxidation process-mediated removal of pharmaceuticals from water: A review. Journal of Environmental Management, 219, 189-207. doi:10.1016/j.jenvman.2018.04.103 | spa |
| dc.relation.references | Klein, E. Y., Van Boeckel, T. P., Martinez, E. M., Pant, S., Gandra, S., Levin, S. A., . . . Laxminarayan, R. (2018). Global increase and geographic convergence in antibiotic consumption between 2000 and 2015. Proceedings of the National Academy of Sciences - PNAS, 115(15), E3463-E3470. doi:10.1073/pnas.1717295115 | spa |
| dc.relation.references | Kümmerer, K. (2009). The presence of pharmaceuticals in the environment due to human use – present knowledge and future challenges. Journal of Environmental Management, 90(8), 2354-2366. doi:10.1016/j.jenvman.2009.01.023 | spa |
| dc.relation.references | Laxminarayan, R., Gelband, H., Levinson, J., Gandra, S., White, A., Barter, D., . . . Pant, S. (2015). The state of the world's antibiotics 2015. Wound Healing Southern Africa, 8(2), 30-34. | spa |
| dc.relation.references | Loos, G., Scheers, T., Van Eyck, K., Van Schepdael, A., Adams, E., Van der Bruggen, B., . . . Dewil, R. (2017). Electrochemical oxidation of key pharmaceuticals using a boron doped diamond electrode. Separation and Purification Technology, 184-191. doi: 10.1016/j.seppur.2017.12.009 | spa |
| dc.relation.references | Martínez-Huitle, C. A., & Panizza, M. (2018). Electrochemical oxidation of organic pollutants for wastewater treatment. Current Opinion in Electrochemistry, 62-71. doi:10.1016/j.coelec.2018.07.010 | spa |
| dc.relation.references | Menapace, H. M., Diaz, N., & Weiss, S. (2008). Electrochemical treatment of pharmaceutical wastewater by combining anodic oxidation with ozonation. Journal of Environmental Science and Health, Part A, 43(8), 961-968. doi:10.1080/10934520801974558 | spa |
| dc.relation.references | Padilla-Robles, B. G., Alonso, A., Martínez-Delgadillo, S. A., González-Brambila, M., Jaúregui-Haza, U. J., & Ramírez-Muñoz, J. (2014). Electrochemical degradation of amoxicillin in aqueous media. Chemical Engineering and Processing: Process Intensification, doi:10.1016/j.cep.2014.12.007 | spa |
| dc.relation.references | Reza Rahmani, A., Nematollahi, D., Reza Samarghandi, M., Taghi Samadi, M., & Azarian, G. (2017). A combined advanced oxidation process: Electrooxidation-ozonation for antibiotic ciprofloxacin removal from aqueous solution. Journal of Electroanalytical Chemistry, 82-89. doi:10.1016/j.jelechem.2017.11.067 | spa |
| dc.relation.references | Rossi, A., Rossi, A., Alves, V., Alves, V., Da Silva, L., Da Silva, L., . . . De Miranda, R. (2009). Electrooxidation and inhibition of the antibacterial activity of oxytetracycline hydrochloride using a RuO2 electrode. Journal of Applied Electrochemistry, 39(3), 329-337. doi:10.1007/s10800-008-9676-2 | spa |
| dc.relation.references | Sirés, I., & Brillas, E. (2012). Remediation of water pollution caused by pharmaceutical residues based on electrochemical separation and degradation technologies: A review. Environment International, 40, 212-229. doi:10.1016/j.envint.2011.07.012 | spa |
| dc.relation.references | Sopaj, F., Rodrigo, M. A., Oturan, N., Podvorica, F. I., Pinson, J., & Oturan, M. A. (2015). Influence of the anode materials on the electrochemical oxidation efficiency. application to oxidative degradation of the pharmaceutical amoxicillin. Chemical Engineering Journal (Lausanne, Switzerland : 1996), 262, 286-294. doi:10.1016/j.cej.2014.09.100 | spa |
| dc.relation.references | Thomas P. Van Boeckel, Charles Brower, Marius Gilbert, Bryan T. Grenfell, Simon A. Levin, Timothy P. Robinson, Ramanan Laxminarayan. (2015). Global trends in antimicrobial use in food animals. Proceedings of the National Academy of Sciences - PNAS, 112(18), 5649-5654. doi:10.1073/pnas.1503141112 | spa |
| dc.relation.references | Tong, L., Huang, S., Wang, Y., Liu, H., & Li, M. (2014). Occurrence of antibiotics in the aquatic environment of jianghan plain, central china. Science of the Total Environment, 497-498, 180-187. doi:10.1016/j.scitotenv.2014.07.068 | spa |
| dc.relation.references | United Nations. (2015). World population prospects the 2015 revision, key findings and advance tables working paper no ESAPWP241. Department of Economics and Social Affairs, Population Division: | spa |
| dc.relation.references | Urtiaga, A. M., Pérez, G., Ibáñez, R., & Ortiz, I. (2013). Removal of pharmaceuticals from a WWTP secondary effluent by ultrafiltration/reverse osmosis followed by electrochemical oxidation of the RO concentrate. Desalination, 331, 26-34. doi:10.1016/j.desal.2013.10.010 | spa |
| dc.relation.references | Wöhler, L., Niebaum, G., Krol, M., & Hoekstra, A. Y. (2018). The grey water footprint of human and veterinary pharmaceuticals. Water Resarch X, 1-11. doi:10.1016/j.wroa.2020.100044 | spa |
| dc.relation.references | Zhang, H., Liu, F., Wu, X., Zhang, J., & Zhang, D. (2009). Degradation of tetracycline in aqueous medium by electrochemical method. Asia-Pacific Journal of Chemical Engineering, 4(5), 568-573. doi:10.1002/apj.286 | spa |
| dc.rights | Atribución-NoComercial-SinDerivadas 2.5 Colombia | |
| dc.rights.accessrights | info:eu-repo/semantics/openAccess | |
| dc.rights.coar | http://purl.org/coar/access_right/c_abf2 | |
| dc.rights.local | Abierto (Texto Completo) | spa |
| dc.rights.uri | http://creativecommons.org/licenses/by-nc-nd/2.5/co/ | |
| dc.subject.keyword | Antibiotics | spa |
| dc.subject.keyword | Electrooxidation | spa |
| dc.subject.keyword | Electrochemistry | spa |
| dc.subject.keyword | Electrochemical oxidation | spa |
| dc.subject.keyword | Water treatment | spa |
| dc.subject.keyword | Emerging pollutants | spa |
| dc.subject.keyword | environmental impact | spa |
| dc.subject.keyword | Human health | spa |
| dc.subject.keyword | Emerging pharmaceutical pollutants | spa |
| dc.subject.lemb | Contaminantes emergentes | spa |
| dc.subject.lemb | Tratamiento de aguas | spa |
| dc.subject.lemb | Impacto ambiental | spa |
| dc.subject.proposal | Antibióticos | spa |
| dc.subject.proposal | Electrooxidación | spa |
| dc.subject.proposal | Electroquímica | spa |
| dc.subject.proposal | Oxidación electroquímica | spa |
| dc.subject.proposal | Salud humana | spa |
| dc.subject.proposal | Contaminantes emergentes farmacéuticos | spa |
| dc.title | Contaminantes emergentes farmacéuticos: impactos, métodos alternativos de determinación y tecnologías limpias para su remoción. Título del capítulo: 12. Oxidación electroquímica para el tratamiento de antibióticos en cuerpos de agua | spa |
| dc.type | bachelor thesis | |
| dc.type.category | Formación de Recurso Humano para la Ctel: Trabajo de grado de Pregrado | spa |
| dc.type.coar | http://purl.org/coar/resource_type/c_7a1f | |
| dc.type.coarversion | http://purl.org/coar/version/c_ab4af688f83e57aa | |
| dc.type.drive | info:eu-repo/semantics/bachelorThesis | |
| dc.type.local | Tesis de pregrado | spa |
| dc.type.version | info:eu-repo/semantics/acceptedVersion |
Archivos
Bloque original
1 - 3 de 3
Cargando...
- Nombre:
- 2021dannagonzalez.pdf
- Tamaño:
- 899.2 KB
- Formato:
- Adobe Portable Document Format
- Descripción:
- Trabajo de Grado
Cargando...
- Nombre:
- CARTA_APROBACIÓN_FACULTAD_AUTOARCHIVO - DANNA CAMILA GONZALEZ - CORREGIDA.pdf
- Tamaño:
- 303.67 KB
- Formato:
- Adobe Portable Document Format
- Descripción:
- Carta Aprobación Facultad
Cargando...
- Nombre:
- CARTA_DERECHOS_DE_AUTOR.pdf
- Tamaño:
- 443.77 KB
- Formato:
- Adobe Portable Document Format
- Descripción:
- Carta Derechos de Autor
Bloque de licencias
1 - 1 de 1
Cargando...
- Nombre:
- license.txt
- Tamaño:
- 807 B
- Formato:
- Item-specific license agreed upon to submission
- Descripción:

