Photooxidation of ethylene glycol and methanol in water solutions over P25 modified with Au, Pt, and Pd
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Ahuja S. Overview: modern water purity and quality. Handbook of water purity and quality. Publisher: Elsevier; 2021. 1–18.
Fujishima A, Honda K. Electrochemical photolysis of water at a semiconductor electrode. Nature. 1972;238(5358):37–8. doi:10.1038/238037a0.
Borges ME, Sierra M, Cuevas E, García RD, Esparza P. Photocatalysis with solar energy: sunlight-responsive photocatalyst based on TiO2 loaded on a natural material for wastewater treatment. Sol Energy. 2016;135:527–35. doi:10.1016/j.solener.2016.06.022.
Almaie S, Vatanpour V, Rasoulifard MH, Koyuncu I. Volatile organic compounds (VOCs) removal by photocatalysts: a review. Chemosphere. 2022;306:135655. doi:10.1016/j.chemosphere.2022.135655.
Selishchev D, Lyulyukin M, Polskikh D, Kovalevskaya K, Selishcheva S, Cherepanova S, et al. Fe-decorated Bi2WO6/TiO2-N heterostructure photocatalyst for enhanced visible light-driven degradation of organic micropollutants in air. Sep Purif Technol. 2026;380:135146. doi:10.1016/j.seppur.2025.135146.
Mishra S, Sundaram B. A review of the photocatalysis process used for wastewater treatment. Mater Today: Proc. 2024;102:393–409. doi:10.1016/j.matpr.2023.07.147.
Anucha CB, Altin I, Bacaksiz E, Stathopoulos VN. Titanium dioxide (TiO2)-based photocatalyst materials activity enhancement for contaminants of emerging concern (CECs) degradation: in the light of modification strategies. Chem Eng J Adv. 2022;10:100262. doi:10.1016/j.ceja.2022.100262.
Mohamadpour F, Amani AM. Photocatalytic systems: reactions, mechanism, and applications. RSC Adv. 2024;14(30):20609–45. doi:10.1039/D4RA03259D.
McGinnis B. Degradation of ethylene glycol in photo Fenton systems. Water Res. 2000;34(8):2346–54. doi:10.1016/S0043-1354(99)00387-5.
McGinnis BD, Adams VD, Middlebrooks EJ. Degradation of ethylene glycol using Fenton’s reagent and UV. Chemosphere. 2001;45(1):101–8. doi:10.1016/S0045-6535(00)00597-X.
Wang Y, Liu M, Miao Q, Wu P, He J, Liu C, et al. Rapid green degradation of ethylene glycol-based antifreeze wastewater via a coupled photolytic and photocatalytic double-pathway mechanism. J Water Process Eng. 2025;71:107191. doi:10.1016/j.jwpe.2025.107191.
Ardila-Arias AN, Berrío-Mesa E, Arriola-Villaseñor E, Álvarez-Gómez WF, Hernández-Maldonado JA, Zepeda-Partida TA, et al. Degradation of ethylene glycol through photo-Fenton heterogeneous system. Rev Ing Univ Medellin. 2019;18(35):91–109. doi:10.22395/rium.v18n35a6.
Barash S, Covington J, Tamulonis C. Preliminary data summary airport deicing operations (Revised). United States Environmental Protection Agency: Washington, DC, USA; 2000.
Qi K, Li Z, Zhang C, Tan X, Wan C, Liu X, et al. Biodegradation of real industrial wastewater containing ethylene glycol by using aerobic granular sludge in a continuous-flow reactor: performance and resistance mechanism. Biochem Eng J. 2020;161:107711. doi:10.1016/j.bej.2020.107711.
Fazliev T, Lyulyukin M, Kozlov D, Selishchev D. Kinetic aspects of ethylene glycol degradation using UV-C activated hydrogen peroxide (H2O2/UV-C). Molecules. 2024;30(1):49. doi:10.3390/molecules30010049.
Araña J, Méndez JAO, Melián JAH, Rodríguez JMD, Díaz OG, Peña JP. Thermal effect of carboxylic acids in the degradation by photo-Fenton of high concentrations of ethylene glycol. Appl Catal B: Environ. 2012;113–114:107–15. doi:10.1016/j.apcatb.2011.11.025.
Miyazaki K, Matsumiya T, Abe T, Kurata H, Fukutsuka T, Kojima K, et al. Electrochemical oxidation of ethylene glycol on Pt-based catalysts in alkaline solutions and quantitative analysis of intermediate products. Electrochim Acta. 2011;56(22):7610–4. doi:10.1016/j.electacta.2011.06.078.
Chauhan NL, Juvekar VA, Sarkar A. Oxidation of ethylene glycol: unity of chemical and electrochemical catalysis. Electrochem Sci Adv. 2022;2(2):e2100092. doi:10.1002/elsa.202100092.
Roebuck L, Daly H, Lan L, Parker J, Gostick A, Skillen N, et al. H2 production from the photocatalytic reforming of ethylene glycol: effect of TiO2 crystalline phase on photo-oxidation mechanism. J Catal. 2025;442:115876. doi:10.1016/j.jcat.2024.115876.
Berto TF, Sanwald KE, Eisenreich W, Gutiérrez OY, Lercher JA. Photoreforming of ethylene glycol over Rh/TiO2 and Rh/GaN:ZnO. J Catal. 2016;338:68–81. doi:10.1016/j.jcat.2016.02.021.
Klauson D, Preis S. The influence of iron ions on the aqueous photocatalytic oxidation of deicing agents. Int J Photoenergy. 2007;2007:089359. doi:10.1155/2007/89359.
Kim KN, Hoffmann MR. Heterogeneous photocatalytic degradation of ethylene glycol and propylene glycol. Korean J Chem Eng. 2008;25(1):89–94. doi:10.1007/s11814-008-0015-4.
Zhang J, Nosaka Y. Photocatalytic oxidation mechanism of methanol and the other reactants in irradiated TiO2 aqueous suspension investigated by OH radical detection. Appl Catal B: Environ. 2015;166–167:32–6. doi:10.1016/j.apcatb.2014.11.006.
Xiao M, Baktash A, Lyu M, Zhao G, Jin Y, Wang L. Unveiling the role of water in heterogeneous photocatalysis of methanol conversion for efficient hydrogen production. Angew Chem Int Ed. 2024;63(18):e202402004. doi:10.1002/anie.202402004.
Chiarello GL, Aguirre MH, Selli E. Hydrogen production by photocatalytic steam reforming of methanol on noble metal-modified TiO2. J Catal. 2010;273(2):182–90. doi:10.1016/j.jcat.2010.05.012.
Augustin A, Ganguly P, Shenoy S, Chuaicham C, Pillai SC, Sasaki K, et al. Impact of hole scavengers on efficient photocatalytic hydrogen production. Adv Sustainable Syst. 2024;8(10):2400321. doi:10.1002/adsu.202400321.
Denisov N, Yoo J, Schmuki P. Effect of different hole scavengers on the photoelectrochemical properties and photocatalytic hydrogen evolution performance of pristine and Pt-decorated TiO2 nanotubes. Electrochim Acta. 2019;319:61–71. doi:10.1016/j.electacta.2019.06.173.
Yilmaz B, Ünal U. Photoelectrochemical investigation of hole scavengers for photocatalytic hydrogen evolution reaction on perovskite‐type niobate nanosheets. ChemPhotoChem. 2025;9(1):e202400297. doi:10.1002/cptc.202400297.
García-López EI, Palmisano L, Marcì G. Overview on photoreforming of biomass aqueous solutions to generate H2 in the presence of g-C3N4-based materials. ChemEngineering. 2023;7(1):11. doi:10.3390/chemengineering7010011.
Ismail AA, Robben L, Bahnemann DW. Study of the efficiency of UV and visible‐light photocatalytic oxidation of methanol on mesoporous RuO2 –TiO2 nanocomposites. ChemPhysChem. 2011;12(5):982–91. doi:10.1002/cphc.201000936.
Wei Z, Ji Y, Bielan Z, Yue X, Xu Y, Sun J, et al. Platinum-modified rod-like titania mesocrystals with enhanced photocatalytic activity. Catalysts. 2024;14(4):283. doi:10.3390/catal14040283.
Li X, Wei H, Song T, Lu H, Wang X. A review of the photocatalytic degradation of organic pollutants in water by modified TiO2. Water Sci Technol. 2023;88(6):1495–507. doi:10.2166/wst.2023.288.
Armaković SJ, Savanović MM, Armaković S. Titanium dioxide as the most used photocatalyst for water purification: an overview. Catalysts. 2022;13(1):26. doi:10.3390/catal13010026.
Bahnemann DW, Hilgendorff M, Memming R. Charge carrier dynamics at TiO2 particles: reactivity of free and trapped holes. J Phys Chem B. 1997;101(21):4265–75. doi:10.1021/jp9639915.
Ollis D. Kinetic analysis of liquid phase photocatalysis and photolysis: a frequent disguise! Catal Today. 2020;340:7–11. doi:10.1016/j.cattod.2018.11.011.
Chakravorty A, Roy S. A review of photocatalysis, basic principles, processes, and materials. Sustainable Chem Environ. 2024;8:100155. doi:10.1016/j.scenv.2024.100155.
Amano F, Yamamoto A, Kumagai J. Highly active rutile TiO2 for photocatalysis under violet light irradiation at 405 nm. Catalysts. 2022;12(10):1079. doi:10.3390/catal12101079.
Eddy DR, Permana MD, Sakti LK, Sheha GAN, Solihudin, Hidayat S, et al. Heterophase polymorph of TiO2 (anatase, rutile, brookite, TiO2 (B)) for efficient photocatalyst: fabrication and activity. Nanomaterials. 2023;13(4):704. doi:10.3390/nano13040704.
Fazliev T, Polskikh D, Selishchev D. Photocatalytic production of H2O2 over rutile TiO2 supported with Pd nanoparticles. Appl Surf Sci. 2025;686:162124. doi:10.1016/j.apsusc.2024.162124.
Žerjav G, Žižek K, Zavašnik J, Pintar A. Brookite vs. rutile vs. anatase: what`s behind their various photocatalytic activities? J Environ Chem Eng. 2022;10(3):107722. doi:10.1016/j.jece.2022.107722.
Ding L, Yang S, Liang Z, Qian X, Chen X, Cui H, et al. TiO2 nanobelts with anatase/rutile heterophase junctions for highly efficient photocatalytic overall water splitting. J Colloid Interface Sci. 2020;567:181–9. doi:10.1016/j.jcis.2020.02.014.
Hernández-Laverde M, Murcia JJ, Morante N, Sannino D, Vaiano V, Navío JA, et al. Photocatalytic activity enhancement by noble metal deposition on faceted F-TiO2 synthesised by microwave assisted method. A study of selective oxidation of gas-phase ethanol in a FBPR reactor. Catal Today. 2024;433:114645. doi:10.1016/j.cattod.2024.114645.
Sakthivel S, Shankar MV, Palanichamy M, Arabindoo B, Bahnemann DW, Murugesan V. Enhancement of photocatalytic activity by metal deposition: characterisation and photonic efficiency of Pt, Au and Pd deposited on TiO2 catalyst. Water Res. 2004;38(14–15):3001–8. doi:10.1016/j.watres.2004.04.046.
Sescu AM, Favier L, Lutic D, Soto-Donoso N, Ciobanu G, Harja M. TiO2 doped with noble metals as an efficient solution for the photodegradation of hazardous organic water pollutants at ambient conditions. Water. 2020;13(1):19. doi:10.3390/w13010019.
Wang K, Wei Z, Ohtani B, Kowalska E. Interparticle electron transfer in methanol dehydrogenation on platinum-loaded titania particles prepared from P25. Catal Today. 2018;303:327–33. doi:10.1016/j.cattod.2017.08.046.
Lakshmanareddy N, Rao VN, Cheralathan KK, Subramaniam EP, Shankar MV. Pt/TiO2 nanotube photocatalyst – effect of synthesis methods on valance state of Pt and its influence on hydrogen production and dye degradation. J Colloid Interface Sci. 2019;538:83–98. doi:10.1016/j.jcis.2018.11.077.
Wang K, Kowalska E. Property-governed performance of platinum-modified titania photocatalysts. Front Chem. 2022;10:972494. doi:10.3389/fchem.2022.972494.
Jin X, Li C, Xu C, Guan D, Cheruvathur A, Wang Y, et al. Photocatalytic C-C bond cleavage in ethylene glycol on TiO2: a molecular level picture and the effect of metal nanoparticles. J Catal. 2017;354:37–45. doi:10.1016/j.jcat.2017.08.004.
Michaelson HB. The work function of the elements and its periodicity. J Appl Phys. 1977;48(11):4729–33. doi:10.1063/1.323539.
Kong J, Jiang C, Rui Z, Liu S, Xian F, Ji W, et al. Photothermocatalytic synergistic oxidation: an effective way to overcome the negative water effect on supported noble metal catalysts for VOCs oxidation. Chem Eng J. 2020;397:125485. doi:10.1016/j.cej.2020.125485.
Chen J, Ollis DF, Rulkens WH, Bruning H. Photocatalyzed oxidation of alcohols and organochlorides in the presence of native TiO2 and metallized TiO2 suspensions. Part (I): photocatalytic activity and pH influence. Water Res. 1999;33(3):661–8. doi:10.1016/S0043-1354(98)00261-9.
Lyulyukin M, Kovalevskiy N, Prosvirin I, Selishchev D, Kozlov D. Thermo-photoactivity of pristine and modified titania photocatalysts under UV and blue light. J Photochem Photobiol A: Chem. 2022;425:113675. doi:10.1016/j.jphotochem.2021.113675.
Makuła P, Pacia M, Macyk W. How to correctly determine the band gap energy of modified semiconductor photocatalysts based on UV–Vis spectra. J Phys Chem Lett. 2018;9(23):6814–7. doi:10.1021/acs.jpclett.8b02892.
Landi S, Segundo IR, Freitas E, Vasilevskiy M, Carneiro J, Tavares CJ. Use and misuse of the Kubelka-Munk function to obtain the band gap energy from diffuse reflectance measurements. Solid State Commun. 2022;341:114573. doi:10.1016/j.ssc.2021.114573.
Tran HD, Nguyen DQ, Do PT, Tran UNP. Kinetics of photocatalytic degradation of organic compounds: a mini-review and new approach. RSC Adv. 2023;13(24):16915–25. doi:10.1039/D3RA01970E.
Rytwo G, Zelkind AL. Evaluation of kinetic pseudo-order in the photocatalytic degradation of ofloxacin. Catalysts. 2021;12(1):24. doi:10.3390/catal12010024.
Jawad AH, Mubarak NSA, Ishak MAM, Ismail K, Nawawi WI. Kinetics of photocatalytic decolourization of cationic dye using porous TiO2 film. J Taibah Univ Sci. 2016;10(3):352–62. doi:10.1016/j.jtusci.2015.03.007.
Korobov VI, Ochkov VF. Chemical kinetics with Mathcad and Maple. Springer-Verlag/Wien; 2011. 344p.
Nomikos GN, Panagiotopoulou P, Kondarides DI, Verykios XE. Kinetic and mechanistic study of the photocatalytic reforming of methanol over Pt/TiO2 catalyst. Appl Catal B: Environ. 2014;146:249–57. doi:10.1016/j.apcatb.2013.03.018.
Childs L. Is photocatalysis catalytic? J Catal. 1980;66(2):383–90. doi:10.1016/0021-9517(80)90041-X.
Qu T, Yao X, Owens G, Gao L, Zhang H. A sustainable natural clam shell derived photocatalyst for the effective adsorption and photodegradation of organic dyes. Sci Rep. 2022;12:2988. doi:10.1038/s41598-022-06981-3.
Rioja N, Zorita S, Peñas FJ. Effect of water matrix on photocatalytic degradation and general kinetic modeling. Appl Catal B: Environ. 2016;180:330–5. doi:10.1016/j.apcatb.2015.06.038.
Lin Y-C, Chen C-H, Chen K-S, Peng Y-P, Lin Y-C, Huang S-W, et al. Green synthesized palladium coated titanium nanotube arrays for simultaneous azo-dye degradation and hydrogen production. Catalysts. 2020;10(11):1330. doi:10.3390/catal10111330.
Nasrollahzadeh M, Shafiei N, Eslamipanah M, Fakhri P, Jaleh B, Orooji Y, et al. Preparation of Au nanoparticles by Q switched laser ablation and their application in 4-nitrophenol reduction. Clean Techn Environ Policy. 2020;22:1715–24. doi:10.1007/s10098-020-01899-8.
Pramanik G, Humpolickova J, Valenta J, Kundu P, Bals S, Bour P, et al. Gold nanoclusters with bright near-infrared photoluminescence. Nanoscale. 2018;10:3792–8. doi:10.1039/C7NR06050E.
Kozlova EA, Lyubina TP, Nasalevich MA, Vorontsov AV, Miller AV, Kaichev VV, et al. Influence of the method of platinum deposition on activity and stability of Pt/TiO2 photocatalysts in the photocatalytic oxidation of dimethyl methylphosphonate. Catal Commun. 2011;12:597–601. doi:10.1016/j.catcom.2010.12.007.
Lee J, Choi W. Photocatalytic reactivity of surface platinized TiO2: substrate specificity and the effect of Pt oxidation state. J Phys Chem B. 2005;109:7399–406. doi:10.1021/jp044425+.
Ollis DF. Kinetics of photocatalyzed reactions: five lessons learned. Front Chem. 2018;6:378. doi:10.3389/fchem.2018.00378.
Fazliev T, Lyulyukin M, Yakhvarov D, Sinyashin O, Yakovlev V, Kozlov D, et al. Degradation, boosted with Fe2+ ions, of ethylene glycol in oxygen-saturated aqueous solutions using the H2O2/UV-C oxidation system: a kinetic study. Chimica Techno Acta. 2025;12. doi:10.15826/chimtech.9192.
Megatif L, Dillert R, Bahnemann DW. Reaction rate study of the photocatalytic degradation of dichloroacetic acid in a black body reactor. Catalysts. 2019;9(8):635. doi:10.3390/catal9080635.
Bloh JZ. A holistic approach to model the kinetics of photocatalytic reactions. Front Chem. 2019;7:128. doi:10.3389/fchem.2019.00128.
DOI: https://doi.org/10.15826/chimtech.9535
Copyright (c) 2026 Kseniya Yu. Lyzhina, Timur R. Fazliev, Dmitry S. Selishchev, Denis V. Kozlov, Mikhail N. Lyulyukin

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