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Investigation of Caffeine Degradation by Anodic Oxidation Using Boron-Doped Diamond Electrode

dc.contributor.authorDeğermenci, Gökçe Didar
dc.date.accessioned2026-01-04T20:50:35Z
dc.date.issued2024-08-31
dc.description.abstractIn this study, the purification of caffeine by electrochemical oxidation, one of the advanced oxidation processes, was systematically investigated. A boron-doped diamond electrode was used as the anode, which has a high potential for the production of large amounts of hydroxyl radicals. The effects of applied current density, initial pH, supporting electrolyte concentration, cathode type, anode-cathode distance, and initial caffeine concentration were evaluated. The results showed that the electrochemical degradation rates of caffeine follow pseudo-first-order kinetics, with rate constants ranging from 0.0154 to 0.0496 min-1 depending on the operating parameters. The applied current density and the electrolysis time proved to be the most important parameters influencing both caffeine degradation and energy consumption. However, varying the initial caffeine concentration and the concentration of the supporting electrolyte also influenced the caffeine degradation rates. Changing the anode-cathode distance and the type of cathode has no effect on the rate of caffeine degradation, but it does have an effect on energy consumption. A current density of 20 mA cm-2, a supporting electrolyte concentration of 50 mM K2SO4, an anode-cathode distance of 2 mm, a cathode type of stainless steel, and an initial solution pH of 3 were found to be optimal values for the degradation of a solution containing 25 mg L-1 caffeine in 45 minutes using a boron-doped diamond anode. Finally, it was found that the pH value of the solution tended to increase during electrolysis.
dc.description.urihttps://doi.org/10.16984/saufenbilder.1404885
dc.description.urihttps://doaj.org/article/a45950eb252f4b4796ca7995b8e94fc8
dc.description.urihttps://dergipark.org.tr/tr/pub/saufenbilder/issue/86497/1404885
dc.identifier.doi10.16984/saufenbilder.1404885
dc.identifier.eissn2147-835X
dc.identifier.endpage755
dc.identifier.openairedoi_dedup___::39d1dae6df228828b48648887a665020
dc.identifier.orcid0000-0002-4533-9273
dc.identifier.scopus2-s2.0-85217461768
dc.identifier.startpage742
dc.identifier.urihttps://hdl.handle.net/20.500.12597/42072
dc.identifier.volume28
dc.publisherSakarya University Journal of Science
dc.relation.ispartofSakarya Üniversitesi Fen Bilimleri Enstitüsü Dergisi
dc.rightsOPEN
dc.subjectboron-doped diamond
dc.subjectAnodic oxidation
dc.subjectCaffeine removal
dc.subjectBoron-Doped diamond
dc.subjectanodic oxidation
dc.subjectEnvironmental Engineering (Other)
dc.subjectEngineering (General). Civil engineering (General)
dc.subjectcaffeine removal
dc.subjectChemistry
dc.subjectÇevre Mühendisliği (Diğer)
dc.subjectTA1-2040
dc.subjectQD1-999
dc.subject.sdg7. Clean energy
dc.subject.sdg3. Good health
dc.titleInvestigation of Caffeine Degradation by Anodic Oxidation Using Boron-Doped Diamond Electrode
dc.typeArticle
dspace.entity.typePublication
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The effects of applied current density, initial pH, supporting electrolyte concentration, cathode type, anode-cathode distance, and initial caffeine concentration were evaluated. The results showed that the electrochemical degradation rates of caffeine follow pseudo-first-order kinetics, with rate constants ranging from 0.0154 to 0.0496 min-1 depending on the operating parameters. The applied current density and the electrolysis time proved to be the most important parameters influencing both caffeine degradation and energy consumption. However, varying the initial caffeine concentration and the concentration of the supporting electrolyte also influenced the caffeine degradation rates. Changing the anode-cathode distance and the type of cathode has no effect on the rate of caffeine degradation, but it does have an effect on energy consumption. 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