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Modeling the sulfamethoxazole degradation by active chlorine in a flow electrochemical reactor.
Palma-Goyes, Ricardo E; Sosa-Rodríguez, Fabiola S; Rivera, Fernando F; Vazquez-Arenas, Jorge.
Afiliação
  • Palma-Goyes RE; Departamento de Química, Universidad del Valle, Santiago de Cali, Calle 13 # 100-00, CP 760032, Colombia.
  • Sosa-Rodríguez FS; Research Area of Growth and Environment, Metropolitan Autonomous University, Azcapotzalco (UAM-A), Av. San Pablo 180, 02200, Mexico City, Mexico.
  • Rivera FF; CONACYT - Centro de Investigación y Desarrollo Tecnológico en Electroquímica, Parque Tecnológico Querétaro s/n Sanfandila, Pedro Escobedo, 76703, Querétaro, Mexico. frivera@cideteq.mx.
  • Vazquez-Arenas J; CONACYT-Departamento de Química, Universidad Autónoma Metropolitana-Iztapalapa, Av. San Rafael Atlixco No 186, 09340, Mexico City, Mexico. jorge_gva@hotmail.com.
Environ Sci Pollut Res Int ; 29(28): 42201-42214, 2022 Jun.
Article em En | MEDLINE | ID: mdl-34467494
The aim of this study is to propose a continuous physicochemical model accounting for the active chlorine production used to degrade recalcitrant sulfamethoxazole (SMX) in an electrochemical flow reactor. The computational model describes the fluid mechanics and mass transfer occurring in the re/actor, along with the electrode kinetics of hydrogen evolution reaction arising on a stainless steel cathode, and the chloride oxidation on a DSA. Specifically, the anodic contributions assume the heterogeneous nature of the adsorbed chlorine species formed on this surface, which are a model requirement to correctly define the experimental reactor performance and degradation efficiency of the contaminant. The experimental validation conducted at different applied current densities, volumetric flows, and chloride concentrations is adequately explained by the model, thus evidencing some of the phenomena controlling the electrocatalytic chlorine production for environmental applications. The best conditions to eliminate the SMX are proposed based on the theoretical analysis of the current efficiency calculated with the model, and experimentally confirmed. The use of the Ti/RuO2-ZrO2-Sb2O3 anode at the bench scale improves the SMX removal by using electro-generated chlorine species adsorbed on its surface, which remarkably increases the oxidation potential of the system along with chlorine desorbed from the electrode. This is a technological innovation concerning other mediated oxidation methods entirely using oxidants in solution.
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Texto completo: 1 Base de dados: MEDLINE Assunto principal: Sulfametoxazol / Poluentes Químicos da Água Idioma: En Ano de publicação: 2022 Tipo de documento: Article

Texto completo: 1 Base de dados: MEDLINE Assunto principal: Sulfametoxazol / Poluentes Químicos da Água Idioma: En Ano de publicação: 2022 Tipo de documento: Article