Advances in electrochemical technologies for sustainable wastewater treatment and chemical synthesis: mechanisms, challenges, and prospects

In the realm of industrial water reclamation, conventional techniques and advanced oxidation processes (AOPs) often fall short in addressing challenges posed by organic pollutants. Electrochemical technologies are emerging as a promising solution, particularly for the removal of biorefractory substa...

Full description

Bibliographic Details
Published in:Journal of Medicinal and Pharmaceutical Chemistry Research
Main Author: Zainul R.; Chaya R.; Wijaya K.; Rahmawati F.; Laghari I.A.; Rahmadiawan D.; Abdullah M.
Format: Article
Language:English
Published: Sami Publishing Company 2024
Online Access:https://www.scopus.com/inward/record.uri?eid=2-s2.0-85178224536&doi=10.48309%2fJMPCR.2024.424054.1031&partnerID=40&md5=b3b88e1645e4b99a208eac30bae209d1
id 2-s2.0-85178224536
spelling 2-s2.0-85178224536
Zainul R.; Chaya R.; Wijaya K.; Rahmawati F.; Laghari I.A.; Rahmadiawan D.; Abdullah M.
Advances in electrochemical technologies for sustainable wastewater treatment and chemical synthesis: mechanisms, challenges, and prospects
2024
Journal of Medicinal and Pharmaceutical Chemistry Research
6
2
10.48309/JMPCR.2024.424054.1031
https://www.scopus.com/inward/record.uri?eid=2-s2.0-85178224536&doi=10.48309%2fJMPCR.2024.424054.1031&partnerID=40&md5=b3b88e1645e4b99a208eac30bae209d1
In the realm of industrial water reclamation, conventional techniques and advanced oxidation processes (AOPs) often fall short in addressing challenges posed by organic pollutants. Electrochemical technologies are emerging as a promising solution, particularly for the removal of biorefractory substances. This comprehensive review delves into the intricacies of various electrochemical tools for treating wastewater contaminated with organic pollutants. The objectives encompass elucidating fundamental process aspects, exploring the influence of operational parameters and reactor design on performance, critically evaluating pros and cons, and envisioning their practical application potential by identifying key investigatory points. The discussion covers direct electrochemical oxidation, indirect electrochemical oxidation via electrogenerated active chlorine, and the synergy between anodic and cathodic processes. The review also critically assesses reactor options for implementing these technologies. Another aspect addressed pertains to capacitive deionization (CDI), an essential desalination process relying on electrical double layer formation. A subcategory, intercalation capacitive deionization (ICDI), harnesses intercalation materials to achieve desalination through ion insertion into electrode crystal structures upon applying voltage. © 2024 by SPC (Sami Publishing Company).
Sami Publishing Company
29810221
English
Article

author Zainul R.; Chaya R.; Wijaya K.; Rahmawati F.; Laghari I.A.; Rahmadiawan D.; Abdullah M.
spellingShingle Zainul R.; Chaya R.; Wijaya K.; Rahmawati F.; Laghari I.A.; Rahmadiawan D.; Abdullah M.
Advances in electrochemical technologies for sustainable wastewater treatment and chemical synthesis: mechanisms, challenges, and prospects
author_facet Zainul R.; Chaya R.; Wijaya K.; Rahmawati F.; Laghari I.A.; Rahmadiawan D.; Abdullah M.
author_sort Zainul R.; Chaya R.; Wijaya K.; Rahmawati F.; Laghari I.A.; Rahmadiawan D.; Abdullah M.
title Advances in electrochemical technologies for sustainable wastewater treatment and chemical synthesis: mechanisms, challenges, and prospects
title_short Advances in electrochemical technologies for sustainable wastewater treatment and chemical synthesis: mechanisms, challenges, and prospects
title_full Advances in electrochemical technologies for sustainable wastewater treatment and chemical synthesis: mechanisms, challenges, and prospects
title_fullStr Advances in electrochemical technologies for sustainable wastewater treatment and chemical synthesis: mechanisms, challenges, and prospects
title_full_unstemmed Advances in electrochemical technologies for sustainable wastewater treatment and chemical synthesis: mechanisms, challenges, and prospects
title_sort Advances in electrochemical technologies for sustainable wastewater treatment and chemical synthesis: mechanisms, challenges, and prospects
publishDate 2024
container_title Journal of Medicinal and Pharmaceutical Chemistry Research
container_volume 6
container_issue 2
doi_str_mv 10.48309/JMPCR.2024.424054.1031
url https://www.scopus.com/inward/record.uri?eid=2-s2.0-85178224536&doi=10.48309%2fJMPCR.2024.424054.1031&partnerID=40&md5=b3b88e1645e4b99a208eac30bae209d1
description In the realm of industrial water reclamation, conventional techniques and advanced oxidation processes (AOPs) often fall short in addressing challenges posed by organic pollutants. Electrochemical technologies are emerging as a promising solution, particularly for the removal of biorefractory substances. This comprehensive review delves into the intricacies of various electrochemical tools for treating wastewater contaminated with organic pollutants. The objectives encompass elucidating fundamental process aspects, exploring the influence of operational parameters and reactor design on performance, critically evaluating pros and cons, and envisioning their practical application potential by identifying key investigatory points. The discussion covers direct electrochemical oxidation, indirect electrochemical oxidation via electrogenerated active chlorine, and the synergy between anodic and cathodic processes. The review also critically assesses reactor options for implementing these technologies. Another aspect addressed pertains to capacitive deionization (CDI), an essential desalination process relying on electrical double layer formation. A subcategory, intercalation capacitive deionization (ICDI), harnesses intercalation materials to achieve desalination through ion insertion into electrode crystal structures upon applying voltage. © 2024 by SPC (Sami Publishing Company).
publisher Sami Publishing Company
issn 29810221
language English
format Article
accesstype
record_format scopus
collection Scopus
_version_ 1809678476716802048