Application of Advanced Oxidation Processes

The increasingly stricter standards for effluent discharge and the decreasing availability of freshwater resources worldwide have made the development of advanced wastewater treatment technologies necessary. Advanced oxidation processes (AOPs) are becoming an attractive alternative and a complementa...

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Other Authors: Colina-Márquez, Jose (Editor), Bustillo-Lecompte, Ciro (Editor), Rehmann, Lars (Editor)
Format: Book Chapter
Published: Basel, Switzerland MDPI - Multidisciplinary Digital Publishing Institute 2020
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Online Access:Get Fullteks
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100 1 |a Colina-Márquez, Jose  |4 edt 
700 1 |a Bustillo-Lecompte, Ciro  |4 edt 
700 1 |a Rehmann, Lars  |4 edt 
700 1 |a Colina-Márquez, Jose  |4 oth 
700 1 |a Bustillo-Lecompte, Ciro  |4 oth 
700 1 |a Rehmann, Lars  |4 oth 
245 1 0 |a Application of Advanced Oxidation Processes 
260 |a Basel, Switzerland  |b MDPI - Multidisciplinary Digital Publishing Institute  |c 2020 
300 |a 1 electronic resource (208 p.) 
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520 |a The increasingly stricter standards for effluent discharge and the decreasing availability of freshwater resources worldwide have made the development of advanced wastewater treatment technologies necessary. Advanced oxidation processes (AOPs) are becoming an attractive alternative and a complementary treatment option to conventional methods. AOPs are used to improve the biodegradability of wastewaters containing non-biodegradable organics. Besides, AOPs may inactivate pathogenic microorganisms without adding additional chemicals to the water during disinfection, avoiding the formation of hazardous by-products. This Special Issue of Processes aims to cover recent progress and novel trends in the field of AOPs, including UV/H2O2, O3, sulphate-radical oxidation, nanotechnology in AOPs, heterogeneous photocatalysis, sonolysis, Fenton, photo-Fenton, electrochemical oxidation, and related oxidation processes. The topics to be addressed in this Special Issue of Processes may also include the application of AOPs at various scales (laboratory, pilot, or industrial scale), the degradation of emerging contaminants in water and wastewater and pollutants in the gas phase, the quantification of toxicicy in residuals, the development of novel catalytic materials and of hybrid processes, including the combination of AOPs with other technologies, process intensification, and the use of photo-electrochemical processes for energy production. 
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650 7 |a History of engineering & technology  |2 bicssc 
653 |a polycyclic musks 
653 |a degradation mechanism 
653 |a UV/chlorine advanced oxidation process 
653 |a water treatment 
653 |a UV-LED 
653 |a photoreactors 
653 |a mining wastewater 
653 |a cyanide 
653 |a metal removal 
653 |a photocatalysis 
653 |a TiO2 nanotubes 
653 |a emerging contaminants 
653 |a paracetamol 
653 |a pH 
653 |a heating oxidation 
653 |a surface/interface properties 
653 |a floatability 
653 |a induction time 
653 |a bubble-particle wrap angle 
653 |a cow manure 
653 |a chemical activation process 
653 |a activated carbon 
653 |a pore property 
653 |a cationic pollutant 
653 |a adsorption performance 
653 |a nano zero-valent iron 
653 |a borohydride reduction method 
653 |a wastewater treatment 
653 |a iron nanopowders 
653 |a lead ions 
653 |a biological processes 
653 |a electrochemical processes 
653 |a oxidation processes 
653 |a petroleum 
653 |a phenols 
653 |a sulfides 
653 |a ethyl violet 
653 |a Mn-doped Fe/rGO nanocomposites 
653 |a mesoporous materials 
653 |a artificial intelligence 
653 |a gradient boosted regression trees 
653 |a total dissolved nitrogen 
653 |a digestion method 
653 |a digestion efficiency 
653 |a intensification 
653 |a ozone 
653 |a electrolyzed water 
653 |a foodborne pathogens 
653 |a sanitization 
653 |a advace oxitadion processes (AOP) 
653 |a electro-oxidation 
653 |a ferrate ion 
653 |a BBR dye 
653 |a n/a 
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