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Artificial neural network modeling of photocatalytic degradation of pollutants : a review of photocatalyst, optimum parameters and model topology
ID Das, Susmita (Author), ID Moon, Snehal (Author), ID Kaur, Ramanpreet (Author), ID Sharma, Gaurav (Author), ID Kumar, Praveen (Author), ID Lavrenčič Štangar, Urška (Author)

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Abstract
In the modern world, wastewater treatment is a critical responsibility for both residential and commercial processes. This article compiled and discussed the photocatalytic degradation of organic pollutants or substances of concern using advanced oxidation processes and various catalysts with reaction conditions and environmental effects. Artificial neural networks (ANN) are also widely used to predict pollutant degradation because they can model nonlinear processes in a time- and cost-efficient manner. This study discusses the different forms of ANNs such as single-layer perceptron (SLP), multi-layer perceptron (MLP), radial basis function (rbf) and recurrent neural networks (RNN) used for predicting the degradation efficiency of the photocatalyst in the given reaction conditions for pollutant removal in textile wastewater treatment. More importantly, this article provides the critical review of the photocatalyst used, the degraded pollutant, the training algorithm, and topology of the ANN model used, as well as the input and output parameters, with a focus on the most influential parameter in the photocatalytic degradation process. This review article aims to provide the reader with a better understanding of the ANN model and its application in the field of photocatalytic degradation process optimization and sensitivity analysis of various process parameters on the degradation rate.

Language:English
Keywords:artificial neural network, photocatalytic reaction, pollutants degradation, wastewater treatment
Work type:Article
Typology:1.02 - Review Article
Organization:FKKT - Faculty of Chemistry and Chemical Technology
Publication status:Published
Publication version:Version of Record
Year:2024
Number of pages:35 str.
Numbering:Vol. , iss.
PID:20.500.12556/RUL-155802 This link opens in a new window
UDC:544.526.5:628.3
ISSN on article:0161-4940
DOI:10.1080/01614940.2024.2338131 This link opens in a new window
COBISS.SI-ID:192168707 This link opens in a new window
Publication date in RUL:18.04.2024
Views:73
Downloads:2
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Record is a part of a journal

Title:Catalysis reviews: science and engineering
Shortened title:Catal. rev., Sci. eng.
Publisher:Taylor & Francis
ISSN:0161-4940
COBISS.SI-ID:5817863 This link opens in a new window

Licences

License:CC BY 4.0, Creative Commons Attribution 4.0 International
Link:http://creativecommons.org/licenses/by/4.0/
Description:This is the standard Creative Commons license that gives others maximum freedom to do what they want with the work as long as they credit the author.

Secondary language

Language:Slovenian
Keywords:umetna nevronska mreža, fotokatalitske reakcije, razgradnja onesnaževal, čiščenje odpadnih vod

Projects

Funder:ARIS - Slovenian Research and Innovation Agency
Project number:P1-0134
Name:Kemija za trajnostni razvoj

Funder:ARIS - Slovenian Research and Innovation Agency
Project number:J2-4444
Name:Fotokatalitska razgradnja perfluoriranih snovi v vodi s sončno svetlobo

Funder:ARIS - Slovenian Research and Innovation Agency
Project number:J2-4441
Name:Dvojno delujoči Nb2O5 in Nb2O5-TiO2 materiali za sočasno redukcijo CO2 in oksidacijo organskih snovi v spojine z dodano vrednostjo

Funder:ARIS - Slovenian Research and Innovation Agency
Project number:J1-4401
Name:Napredni trendi v Ramanski spektroelektrokemiji pri raziskavah katalizatorjev

Funder:ARIS - Slovenian Research and Innovation Agency
Project number:N2-0310
Name:Izdelava hibridnih kompozitov Z-sheme s CNT in načrtovanje fotokatalitičnega reaktorja za čiščenje industrijske odpadne vode

Funder:ARIS - Slovenian Research and Innovation Agency
Project number:J7-4638
Name:Načrtovanje selektivnih katalitskih postopkov pretvorbe CO2 v etanol – UliSess

Funder:Other - Other funder or multiple funders
Project number:SRG/2019/ 001732

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