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  4. Comparison of the degradation of multiple amine-containing pharmaceuticals during electroindirect oxidation and electrochlorination processes in continuous system
 
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Comparison of the degradation of multiple amine-containing pharmaceuticals during electroindirect oxidation and electrochlorination processes in continuous system

Journal
Water Research
Journal Volume
203
Date Issued
2021
Author(s)
Liu Y.-J
Hu C.-Y
Lo S.-L.
SHANG-LIEN LO  
DOI
10.1016/j.watres.2021.117517
URI
https://www.scopus.com/inward/record.uri?eid=2-s2.0-85112383015&doi=10.1016%2fj.watres.2021.117517&partnerID=40&md5=7e1ac501796d6dec7c1905c0fb5838ef
https://scholars.lib.ntu.edu.tw/handle/123456789/598654
Abstract
The degradation of pharmaceuticals by electrochemical oxidation (EO) in simulated wastewater containing multiple pharmaceuticals was compared between batch and continuous reactors. Despite the excellent efficiencies achieved in batch experiments, the practical/large-scale applications of EO-degrading amine-containing pharmaceuticals has not yet been accomplished. This paper presents the results of continuous experiments with one of the most promising electrochemical configurations of Pt/Ti electrodes before proceeding to application. In the continuous electrooxidation system (without chloride), direct oxidation on the electrode surface and oxidation by hydroxyl radicals were the main pathways. Due to their short lifespans, the radicals could not be transferred to the bulk solution, and the removal of pharmaceuticals followed the order of sulfamethoxazole (SMX) > paracetamol (PAR) > diclofenac (DIC). In the electrochlorination system (with chloride), oxidation by residual chlorine was the main pathway. The removal of pharmaceuticals followed the order of sulfamethoxazole (SMX) > diclofenac (DIC) > paracetamol (PAR). High SMX removal was realized because of the high reaction rate of SMX with free chlorine. Among the pharmaceuticals, PAR had the lowest removal because it is a neutral species with a low mass transfer rate without the attraction of electrostatic force. These results are consistent with the predictions from our previous batch-scale study, which showed that the reaction rate of dissociated compounds could be increased by the addition of electrostatic force. Furthermore, multiple coexisting pharmaceuticals, such as SMX and PAR or DIC, may form dimers that can be transferred to complex structures and cause higher toxicity. ? 2021
Subjects
Dimer
Electrochlorination
Electroindirect oxidation
Multiple amine-containing pharmaceuticals
Scavenger
Toxicity
Batch reactors
Chlorine
Chlorine compounds
Electrochemical electrodes
Electrochemical oxidation
Electrooxidation
Electrostatic devices
Mass transfer
Reaction rates
Continuous system
Diclofenac
Electrochemicals
Multiple amine-containing pharmaceutical
Paracetamol
Reactions rates
Sulfamethoxazole
Dimers
bioreactor
degradation
drug
electrochemical method
electrode
wastewater
amine
sulfamethoxazole
oxidation reduction reaction
water pollutant
Amines
Oxidation-Reduction
Pharmaceutical Preparations
Waste Water
Water Pollutants, Chemical
SDGs

[SDGs]SDG11

Type
journal article

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