EFFECT OF ULTRAVIOLET IRRADIATION ON THE PROPERTIES OF TITANIUM DIOXIDE AND PLATINUM-BASED CO CATALYST DEPOSITED ON POROUS NICKEL
- Authors: Vershinin N.N1, Balikhin I.L1,2, Kabachkov E.N1,2, Kurkin E.N1,2
-
Affiliations:
- Federal Research Center for Problems of Chemical Physics and Medical Chemistry of the Russian Academy of Sciences
- Y.A. Osipyan Institute of Solid State Physics, Russian Academy of Sciences
- Issue: Vol 59, No 6 (2025)
- Pages: 382-388
- Section: ФОТОКАТАЛИЗ
- URL: https://journals.rcsi.science/0023-1193/article/view/355978
- DOI: https://doi.org/10.7868/S3034543X25060032
- ID: 355978
Cite item
Abstract
Keywords
About the authors
N. N Vershinin
Federal Research Center for Problems of Chemical Physics and Medical Chemistry of the Russian Academy of Sciences
Email: vernik@icp.ac.ru
Chernogolovka, Russia
I. L Balikhin
Federal Research Center for Problems of Chemical Physics and Medical Chemistry of the Russian Academy of Sciences; Y.A. Osipyan Institute of Solid State Physics, Russian Academy of SciencesChernogolovka, Russia
E. N Kabachkov
Federal Research Center for Problems of Chemical Physics and Medical Chemistry of the Russian Academy of Sciences; Y.A. Osipyan Institute of Solid State Physics, Russian Academy of SciencesChernogolovka, Russia
E. N Kurkin
Federal Research Center for Problems of Chemical Physics and Medical Chemistry of the Russian Academy of Sciences; Y.A. Osipyan Institute of Solid State Physics, Russian Academy of SciencesChernogolovka, Russia
References
- Mo J. et al. Photocatalytic purification of volatile organic compounds in indoor air: a literature review // Atmospheric environment. 2009. V. 43. №. 14. С. 2229–2246.
- Paz Y. Application of TiO2 photocatalysis for air treatment: Patents’ overview // Applied Catalysis B: Environmental. 2010. V. 99. № 3–4. С. 448–460.
- Kolarik B. et al. The effect of a photocatalytic air purifier on indoor air quality quantified using different measuring methods // Building and Environment. 2010. V. 45. №. 6. С. 1434–1440.
- Sangman Hwang, Myung Churl Lee, Wonyong Choi, Applied Catalysis B: Environmental. 2003. Т. 46. № 1. С. 49–63.
- Вершинин Н.Н., Балихин И.Л., Кабачков Е.Н., Куркин Е.Н. // Химия высоких энергий. 2025. Т. 59. № 1. С. 39–45.
- Вершинин Н.Н., Балихин И.Л., Бакаев В.А., Берестенко В.И., Ефимов О.Н., Куркин Е.Н., Кабачков Е.Н. Известия Академии наук. Серия химическая. 2017. № 4. С. 648.
- Вершинин Н.Н., Берестенко В.И., Ефимов О.Н., Куркин Е.Н., Кабачков Е.Н. Химия высоких энергий. 2019. Т. 53. С. 400–406.
- Raque Aymerich Armengol, Joohyun Lim, Marc Ledendecker, Katharina Henggeand Christina Scheu, nanoscale Adv. 2021. № 3. С. 5075–5082.
- Козлова Е.А., Люлюкин М.Н., Козлов Д.В., Пармон В.Н. Полупроводниковые фотокатализаторы и механизмы восстановления углекислого газа и фиксации молекулярного азота под действием излучения УФ- и видимого диапазона // Успехи химии. 2021. № 90(12). С. 1520–1543.
- Khan H., Shah M. U.H. Modification strategies of TiO2 based photocatalysts for enhanced visible light activity and energy storage ability: A review // Journal of Environmental Chemical Engineering. 2023. С. 111532.
- Han B., Guo Y., Huang Y., Xi W., Xu J., Luo J., Qi H., Ren Y., Liu X., Qiao B. and Zhang T. Strong metal–support interactions between Pt single atoms and TiO2 // Angewandte Chemie International Edition. 2020. № 59(29). pp. 11824–11829.
- Zhao, G., Zhang, D., Wang, J., Liu, D., Jin, F., Li, B., Pan, S., Zang, J. and Gui, J. A Facile Strategy for Pt Redispersion on TiO2 for Enhanced SMSI Effect and Low-Temperature Reducibility // Catalysis Letters. 2024. № 154(10). pp. 5593–5600.
Supplementary files


