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The extent of platinum-induced hydrogen spillover on cerium dioxide
Beck, A., Kazazis, D., Ekinci, Y., Li, X., Müller Gubler, E. A., Kleibert, A., … van Bokhoven, J. A. (2023). The extent of platinum-induced hydrogen spillover on cerium dioxide. ACS Nano, 17(2), 1091-1099. https://doi.org/10.1021/acsnano.2c08152
Colloidally engineered Pd and Pt catalysts distinguish surface- and vapor-mediated deactivation mechanisms
Oh, J., Beck, A., Goodman, E. D., Roling, L. T., Boucly, A., Artiglia, L., … Cargnello, M. (2023). Colloidally engineered Pd and Pt catalysts distinguish surface- and vapor-mediated deactivation mechanisms. ACS Catalysis, 13, 1812-1822. https://doi.org/10.1021/acscatal.2c04683
Platinum‐iron(II) oxide sites directly responsible for preferential carbon monoxide oxidation at ambient temperature: an operando X‐ray absorption spectroscopy study
Sadykov, I. I., Sushkevich, V. L., Krumeich, F., Nuguid, R. J. G., van Bokhoven, J. A., Nachtegaal, M., & Safonova, O. (2023). Platinum‐iron(II) oxide sites directly responsible for preferential carbon monoxide oxidation at ambient temperature: an operando X‐ray absorption spectroscopy study. Angewandte Chemie International Edition, 62(1), e202214032 (11 pp.). https://doi.org/10.1002/anie.202214032
Evolution of surface and bulk structure of supported palladium nanoparticles by <em>in situ</em> X-ray absorption and infrared spectroscopies: effect of temperature, CO and CH<sub>4</sub> gas
Usoltsev, O. A., Skorynina, A. A., Protsenko, B. O., Martin-Diaconescu, V., Pellegrini, R., Soldatov, A. V., … Bugaev, A. L. (2023). Evolution of surface and bulk structure of supported palladium nanoparticles by in situ X-ray absorption and infrared spectroscopies: effect of temperature, CO and CH4 gas. Applied Surface Science, 614, 156171 (7 pp.). https://doi.org/10.1016/j.apsusc.2022.156171
Stepwise conversion of methane to methanol over Cu-mordenite prepared by supercritical and aqueous ion exchange routes and quantification of active Cu species by H<sub>2</sub>-TPR
Yousefzadeh, H., Bozbag, S. E., Sushkevich, V., van Bokhoven, J. A., & Erkey, C. (2023). Stepwise conversion of methane to methanol over Cu-mordenite prepared by supercritical and aqueous ion exchange routes and quantification of active Cu species by H2-TPR. Catalysis Communications, 174, 106574 (8 pp.). https://doi.org/10.1016/j.catcom.2022.106574
Structure of selective and nonselective dicopper (II) sites in CuMFI for methane oxidation to methanol
Artsiusheuski, M. A., van Bokhoven, J. A., & Sushkevich, V. L. (2022). Structure of selective and nonselective dicopper (II) sites in CuMFI for methane oxidation to methanol. ACS Catalysis, 12(24), 15626-15637. https://doi.org/10.1021/acscatal.2c05299
Correlating Lewis acid activity to extra-framework aluminum species in zeolite Y introduced by ion-exchange
Batool, S. R., Sushkevich, V. L., & van Bokhoven, J. A. (2022). Correlating Lewis acid activity to extra-framework aluminum species in zeolite Y introduced by ion-exchange. Journal of Catalysis, 408, 24-35. https://doi.org/10.1016/j.jcat.2022.02.010
Drastic events and gradual change define the structure of an active copper-zinc-alumina catalyst for methanol synthesis
Beck, A., Newton, M. A., Zabilskiy, M., Rzepka, P., Willinger, M. G., & van Bokhoven, J. A. (2022). Drastic events and gradual change define the structure of an active copper-zinc-alumina catalyst for methanol synthesis. Angewandte Chemie International Edition, 61(15), e202200301 (8 pp.). https://doi.org/10.1002/anie.202200301
Drastische Ereignisse und langsame Transformation definieren die Struktur eines aktiven Kupfer‐Zink‐Aluminiumoxid‐Katalysators für die Methanol Synthese
Beck, A., Newton, M. A., Zabilskiy, M., Rzepka, P., Willinger, M. G., & van Bokhoven, J. A. (2022). Drastische Ereignisse und langsame Transformation definieren die Struktur eines aktiven Kupfer‐Zink‐Aluminiumoxid‐Katalysators für die Methanol Synthese. Angewandte Chemie, 134(15), e202200301 (9 pp.). https://doi.org/10.1002/ange.202200301
Hydrogen interaction with oxide supports in the presence and absence of platinum
Beck, A., Rzepka, P., Marshall, K. P., Stoian, D., Willinger, M. G., & van Bokhoven, J. A. (2022). Hydrogen interaction with oxide supports in the presence and absence of platinum. Journal of Physical Chemistry C, 126, 17589-17597. https://doi.org/10.1021/acs.jpcc.2c05478
Water inhibition and role of palladium adatoms on Pd/Al<sub>2</sub>O<sub>3</sub> catalysts during methane oxidation
Boucly, A., Artiglia, L., Roger, M., Zabilskiy, M., Beck, A., Ferri, D., & van Bokhoven, J. A. (2022). Water inhibition and role of palladium adatoms on Pd/Al2O3 catalysts during methane oxidation. Applied Surface Science, 606, 154927 (8 pp.). https://doi.org/10.1016/j.apsusc.2022.154927
Conversion of sugar diacetyls to bio-hydrocarbons by the catalytic cracking in a fixed bed with fresh and deactivated Beta zeolite
Cardoso, C., Lam, Y. L., San Gil, R. A. S., Van Bokhoven, J. A., & Pereira, M. M. (2022). Conversion of sugar diacetyls to bio-hydrocarbons by the catalytic cracking in a fixed bed with fresh and deactivated Beta zeolite. Catalysis Communications, 171, 106519 (10 pp.). https://doi.org/10.1016/j.catcom.2022.106519
Highly selective Suzuki reaction catalysed by a molecular Pd-P-MOF catalyst under mild conditions: role of ligands and palladium speciation
Cartagenova, D., Bachmann, S., Püntener, K., Scalone, M., Newton, M. A., Peixoto Esteves, F. A., … Ranocchiari, M. (2022). Highly selective Suzuki reaction catalysed by a molecular Pd-P-MOF catalyst under mild conditions: role of ligands and palladium speciation. Catalysis Science and Technology, 12(3), 954-961. https://doi.org/10.1039/D1CY01351C
Solvent-dependent textural properties of defective UiO-66 after acidic and basic treatment
Cartagenova, D., Peixoto Esteves, F. A., Fischer, N. T., van Bokhoven, J. A., & Ranocchiari, M. (2022). Solvent-dependent textural properties of defective UiO-66 after acidic and basic treatment. Inorganic Chemistry Frontiers, 9(1), 70-77. https://doi.org/10.1039/D1QI00226K
Production of jet-fuel-range olefins via catalytic conversion of pentene and hexene over mesoporous Al-SBA-15 catalyst
Dubray, F., Paunović, V., Ranocchiari, M., & van Bokhoven, J. A. (2022). Production of jet-fuel-range olefins via catalytic conversion of pentene and hexene over mesoporous Al-SBA-15 catalyst. Journal of Industrial and Engineering Chemistry, 114, 409-417. https://doi.org/10.1016/j.jiec.2022.07.030
Dynamic interplay between metal nanoparticles and oxide support under redox conditions
Frey, H., Beck, A., Huang, X., van Bokhoven, J. A., & Willinger, M. G. (2022). Dynamic interplay between metal nanoparticles and oxide support under redox conditions. Science, 376(6596), 982-987. https://doi.org/10.1126/science.abm3371
Dynamic structural changes due to metal-support interaction under reactive conditions
Frey, H., Beck, A., Huang, X., van Bokhoven, J. A., & Willinger, M. G. (2022). Dynamic structural changes due to metal-support interaction under reactive conditions. Microscopy and Microanalysis, 28(S1), 152-153. https://doi.org/10.1017/S1431927622001507
Liquid-gas interface of iron aqueous solutions and Fenton reagents
Gladich, I., Chen, S., Yang, H., Boucly, A., Winter, B., van Bokhoven, J. A., … Artiglia, L. (2022). Liquid-gas interface of iron aqueous solutions and Fenton reagents. Journal of Physical Chemistry Letters, 13(13), 2994-3001. https://doi.org/10.1021/acs.jpclett.2c00380
Reply to "comment on 'liquid-gas interface of iron aqueous solutions and fenton reagents'"
Gladich, I., Chen, S., Yang, H., Boucly, A., Winter, B., Van Bokhoven, J. A., … Artiglia, L. (2022). Reply to "comment on 'liquid-gas interface of iron aqueous solutions and fenton reagents'". Journal of Physical Chemistry Letters, 13(29), 6681-6682. https://doi.org/10.1021/acs.jpclett.2c01391
Visualizing structural and chemical transformations of an industrial Cu/ZnO/Al<sub>2</sub>O<sub>3</sub> pre-catalyst during activation and CO<sub>2</sub> reduction
Huang, X., Beck, A., Fedorov, A., Frey, H., Zhang, B., Klötzer, B., … Willinger, M. G. (2022). Visualizing structural and chemical transformations of an industrial Cu/ZnO/Al2O3 pre-catalyst during activation and CO2 reduction. ChemCatChem, 14(24), e202201280 (7 pp.). https://doi.org/10.1002/cctc.202201280
 

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