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dc.contributor.authorZhurenok, A. V.en
dc.contributor.authorMarkovskaya, D. V.en
dc.contributor.authorGerasimov, E. Y.en
dc.contributor.authorVokhmintsev, A. S.en
dc.contributor.authorWeinstein, I. A.en
dc.contributor.authorProsvirin, I. P.en
dc.contributor.authorCherepanova, S. V.en
dc.contributor.authorBukhtiyarov, A. V.en
dc.contributor.authorKozlova, E. A.en
dc.date.accessioned2022-05-12T08:21:21Z-
dc.date.available2022-05-12T08:21:21Z-
dc.date.issued2021-
dc.identifier.citationConstructing g-C3N4/Cd1−xZnxS-Based Heterostructures for Efficient Hydrogen Production under Visible Light / A. V. Zhurenok, D. V. Markovskaya, E. Y. Gerasimov et al. // Catalysts. — 2021. — Vol. 11. — Iss. 11. — 1340.en
dc.identifier.issn2073-4344-
dc.identifier.otherAll Open Access, Gold3
dc.identifier.urihttp://elar.urfu.ru/handle/10995/111725-
dc.description.abstractTwo types of photocatalysts, 1%Pt/Cd1−x Znx S/g-C3 N4 (x = 0.2–0.3) and Cd1−x Znx S/1% Pt/g-C3 N4 (x = 0.2–0.3), were synthesized by varying the deposition order of platinum, and a solid solution of cadmium and zinc sulfides onto the surface of g-C3 N4. The characterization of photo-catalysts showed that, for 1%Pt/Cd1−x Znx S/g-C3 N4, small platinum particles were deposited onto a solid solution of cadmium and zinc sulfides; in the case of Cd1−x Znx S/1%Pt/g-C3 N4, enlarged platinum clusters were located on the surface of graphitic carbon nitride. Based on the structure of the photocatalysts, we assumed that, in the first case, type II heterojunctions and, in the latter case, S-scheme heterojunctions were realized. The activity of the synthesized samples was tested in hydrogen evolution from triethanolamine (TEOA) basic solution under visible light (λ = 450 nm). A remarkable increase in hydrogen evolution rate compared to single-phase platinized 1%Pt/Cd1−x Znx S photocat-alysts was observed only in the case of ternary photocatalysts with platinum located on the g-C3 N4 surface, Cd1−x Znx S/1%Pt/g-C3 N4. Thus, we proved using kinetic experiments and characterization techniques that, for composite photocatalysts based on Cd1−x Znx S and g-C3 N4, the formation of the S-scheme mechanism is more favorable than that for type II heterojunction. The highest activity, 2.5 mmol H2 g−1 h−1, with an apparent quantum efficiency equal to 6.0% at a wavelength of 450 nm was achieved by sample 20% Cd0.8 Zn0.2 S/1% Pt/g-C3 N4. © 2021 by the authors. Licensee MDPI, Basel, Switzerland.en
dc.description.sponsorshipFunding: This work was supported by the Ministry of Science and Higher Education of the Russian Federation within the governmental order for Boreskov Institute of Catalysis (project AAAA-A21-121011390009-1) and was also funded by the Russian Foundation for Basic Research (project No. 20-33-70086). A.S.V. and I.A.W. thank Minobrnauki research project FEUZ-2020-0059 for financial support.en
dc.format.mimetypeapplication/pdfen
dc.language.isoenen
dc.publisherMDPIen1
dc.publisherMDPI AGen
dc.rightsinfo:eu-repo/semantics/openAccessen
dc.sourceCatalysts2
dc.sourceCatalystsen
dc.subjectG-C3 N4en
dc.subjectPHOTOCATALYTIC HYDROGEN EVOLUTIONen
dc.subjectSOLAR ENERGYen
dc.subjectVISIBLE LIGHTen
dc.titleConstructing g-C3N4/Cd1−xZnxS-Based Heterostructures for Efficient Hydrogen Production under Visible Lighten
dc.typeArticleen
dc.typeinfo:eu-repo/semantics/articleen
dc.typeinfo:eu-repo/semantics/publishedVersionen
dc.identifier.rsi47522705-
dc.identifier.doi10.3390/catal11111340-
dc.identifier.scopus85118491638-
local.contributor.employeeZhurenok, A.V., Federal Research Center, Boreskov Institute of Catalysis, Pr. Ak. Lavrentieva, 5, Novosibirsk, 630090, Russian Federation; Markovskaya, D.V., Federal Research Center, Boreskov Institute of Catalysis, Pr. Ak. Lavrentieva, 5, Novosibirsk, 630090, Russian Federation; Gerasimov, E.Y., Federal Research Center, Boreskov Institute of Catalysis, Pr. Ak. Lavrentieva, 5, Novosibirsk, 630090, Russian Federation; Vokhmintsev, A.S., NANOTECH Centre, Ural Federal University, St. Mira, 19, Ekaterinburg, 620002, Russian Federation; Weinstein, I.A., NANOTECH Centre, Ural Federal University, St. Mira, 19, Ekaterinburg, 620002, Russian Federation, Institute of Metallurgy of the Ural Branch, of the Russian Academy of Sciences, Ekaterinburg, 620016, Russian Federation; Prosvirin, I.P., Federal Research Center, Boreskov Institute of Catalysis, Pr. Ak. Lavrentieva, 5, Novosibirsk, 630090, Russian Federation; Cherepanova, S.V., Federal Research Center, Boreskov Institute of Catalysis, Pr. Ak. Lavrentieva, 5, Novosibirsk, 630090, Russian Federation; Bukhtiyarov, A.V., Federal Research Center, Boreskov Institute of Catalysis, Pr. Ak. Lavrentieva, 5, Novosibirsk, 630090, Russian Federation; Kozlova, E.A., Federal Research Center, Boreskov Institute of Catalysis, Pr. Ak. Lavrentieva, 5, Novosibirsk, 630090, Russian Federationen
local.issue11-
local.volume11-
dc.identifier.wos000807171700001-
local.contributor.departmentFederal Research Center, Boreskov Institute of Catalysis, Pr. Ak. Lavrentieva, 5, Novosibirsk, 630090, Russian Federation; NANOTECH Centre, Ural Federal University, St. Mira, 19, Ekaterinburg, 620002, Russian Federation; Institute of Metallurgy of the Ural Branch, of the Russian Academy of Sciences, Ekaterinburg, 620016, Russian Federationen
local.identifier.pure28890345-
local.description.order1340-
local.identifier.eid2-s2.0-85118491638-
local.fund.rffi20-33-70086-
local.identifier.wosWOS:000807171700001-
local.fund.feuzFEUZ-2020-0059-
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