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The First Study on the Reactivity of Water Vapor in Metal-Organic Frameworks with Platinum Nanocrystals

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The First Study on the Reactivity of Water Vapor in Metal-Organic Frameworks with Platinum Nanocrystals

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Ogiwara, N.; Kobayashi, H.; Concepción Heydorn, P.; Rey Garcia, F.; Kitagawa, H. (2019). The First Study on the Reactivity of Water Vapor in Metal-Organic Frameworks with Platinum Nanocrystals. Angewandte Chemie International Edition. 58(34):11731-11736. https://doi.org/10.1002/anie.201905667

Por favor, use este identificador para citar o enlazar este ítem: http://hdl.handle.net/10251/156098

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Título: The First Study on the Reactivity of Water Vapor in Metal-Organic Frameworks with Platinum Nanocrystals
Autor: Ogiwara, Naoki Kobayashi, Hirokazu Concepción Heydorn, Patricia Rey Garcia, Fernando Kitagawa, Hiroshi
Entidad UPV: Universitat Politècnica de València. Instituto Universitario Mixto de Tecnología Química - Institut Universitari Mixt de Tecnologia Química
Fecha difusión:
Resumen:
[EN] We first studied the reactivity of H2O vapor in metal-organic frameworks (MOFs) with Pt nanocrystals (NCs) through the water-gas shift (WGS) reaction. A water-stable MOF, UiO-66, serves as a highly effective support ...[+]
Palabras clave: Heterogeneous catalysts , Platinum nanocrystals , Metal-organic frameworks , Water , Water-gas shift reaction
Derechos de uso: Cerrado
Fuente:
Angewandte Chemie International Edition. (issn: 1433-7851 )
DOI: 10.1002/anie.201905667
Editorial:
John Wiley & Sons
Versión del editor: http://doi.org/10.1002/anie.201905667
Código del Proyecto:
info:eu-repo/grantAgreement/MINECO//SEV-2016-0683/
info:eu-repo/grantAgreement/JSPS//17750056/
info:eu-repo/grantAgreement/JSPS//17J10099/
info:eu-repo/grantAgreement/JST//JPMJPR1514/
Agradecimientos:
This work was supported by JST PRESTO (No. JPMJPR1514), JSPS Grants-in-Aid for Scientific Research (B) (No. 17750056), JSPS Research Fellow (No. 17J10099) and Spanish Government-MINECO through "Severo Ochoa" Excellence ...[+]
Tipo: Artículo

References

Burtch, N. C., Jasuja, H., & Walton, K. S. (2014). Water Stability and Adsorption in Metal–Organic Frameworks. Chemical Reviews, 114(20), 10575-10612. doi:10.1021/cr5002589

O’Nolan, D., Kumar, A., & Zaworotko, M. J. (2017). Water Vapor Sorption in Hybrid Pillared Square Grid Materials. Journal of the American Chemical Society, 139(25), 8508-8513. doi:10.1021/jacs.7b01682

De Lange, M. F., Verouden, K. J. F. M., Vlugt, T. J. H., Gascon, J., & Kapteijn, F. (2015). Adsorption-Driven Heat Pumps: The Potential of Metal–Organic Frameworks. Chemical Reviews, 115(22), 12205-12250. doi:10.1021/acs.chemrev.5b00059 [+]
Burtch, N. C., Jasuja, H., & Walton, K. S. (2014). Water Stability and Adsorption in Metal–Organic Frameworks. Chemical Reviews, 114(20), 10575-10612. doi:10.1021/cr5002589

O’Nolan, D., Kumar, A., & Zaworotko, M. J. (2017). Water Vapor Sorption in Hybrid Pillared Square Grid Materials. Journal of the American Chemical Society, 139(25), 8508-8513. doi:10.1021/jacs.7b01682

De Lange, M. F., Verouden, K. J. F. M., Vlugt, T. J. H., Gascon, J., & Kapteijn, F. (2015). Adsorption-Driven Heat Pumps: The Potential of Metal–Organic Frameworks. Chemical Reviews, 115(22), 12205-12250. doi:10.1021/acs.chemrev.5b00059

Rieth, A. J., Yang, S., Wang, E. N., & Dincă, M. (2017). Record Atmospheric Fresh Water Capture and Heat Transfer with a Material Operating at the Water Uptake Reversibility Limit. ACS Central Science, 3(6), 668-672. doi:10.1021/acscentsci.7b00186

Kim, H., Yang, S., Rao, S. R., Narayanan, S., Kapustin, E. A., Furukawa, H., … Wang, E. N. (2017). Water harvesting from air with metal-organic frameworks powered by natural sunlight. Science, 356(6336), 430-434. doi:10.1126/science.aam8743

Ghosh, S. K., & Bharadwaj, P. K. (2003). Coexistence of Water Dimer and Hexamer Clusters in 3D Metal−Organic Framework Structures of Ce(III) and Pr(III) with Pyridine-2,6-dicarboxylic Acid. Inorganic Chemistry, 42(25), 8250-8254. doi:10.1021/ic034976z

Taylor, J. M., Mah, R. K., Moudrakovski, I. L., Ratcliffe, C. I., Vaidhyanathan, R., & Shimizu, G. K. H. (2010). Facile Proton Conduction via Ordered Water Molecules in a Phosphonate Metal−Organic Framework. Journal of the American Chemical Society, 132(40), 14055-14057. doi:10.1021/ja107035w

Grabow, L. C., Gokhale, A. A., Evans, S. T., Dumesic, J. A., & Mavrikakis, M. (2008). Mechanism of the Water Gas Shift Reaction on Pt:  First Principles, Experiments, and Microkinetic Modeling. The Journal of Physical Chemistry C, 112(12), 4608-4617. doi:10.1021/jp7099702

Navarro-Jaén, S., Centeno, M. Á., Laguna, O. H., & Odriozola, J. A. (2018). Pt/CePO4 catalysts for the WGS reaction: influence of the water-supplier role of the support on the catalytic performance. Journal of Materials Chemistry A, 6(35), 17001-17010. doi:10.1039/c8ta04603d

Flaherty, D. W., Yu, W.-Y., Pozun, Z. D., Henkelman, G., & Mullins, C. B. (2011). Mechanism for the water–gas shift reaction on monofunctional platinum and cause of catalyst deactivation. Journal of Catalysis, 282(2), 278-288. doi:10.1016/j.jcat.2011.06.024

Rösler, C., Dissegna, S., Rechac, V. L., Kauer, M., Guo, P., Turner, S., … Fischer, R. A. (2017). Encapsulation of Bimetallic Metal Nanoparticles into Robust Zirconium-Based Metal-Organic Frameworks: Evaluation of the Catalytic Potential for Size-Selective Hydrogenation. Chemistry - A European Journal, 23(15), 3583-3594. doi:10.1002/chem.201603984

Dulaurent, O., & Bianchi, D. (2000). Adsorption isobars for CO on a Pt/Al2O3 catalyst at high temperatures using FTIR spectroscopy: isosteric heat of adsorption and adsorption model. Applied Catalysis A: General, 196(2), 271-280. doi:10.1016/s0926-860x(99)00472-x

Garnier, A., Sall, S., Garin, F., Chetcuti, M. J., & Petit, C. (2013). Site effects in the adsorption of carbon monoxide on real 1.8nm Pt nanoparticles: An Infrared investigation in time and temperature. Journal of Molecular Catalysis A: Chemical, 373, 127-134. doi:10.1016/j.molcata.2013.02.029

Choi, K. M., Na, K., Somorjai, G. A., & Yaghi, O. M. (2015). Chemical Environment Control and Enhanced Catalytic Performance of Platinum Nanoparticles Embedded in Nanocrystalline Metal–Organic Frameworks. Journal of the American Chemical Society, 137(24), 7810-7816. doi:10.1021/jacs.5b03540

Rungtaweevoranit, B., Baek, J., Araujo, J. R., Archanjo, B. S., Choi, K. M., Yaghi, O. M., & Somorjai, G. A. (2016). Copper Nanocrystals Encapsulated in Zr-based Metal–Organic Frameworks for Highly Selective CO2 Hydrogenation to Methanol. Nano Letters, 16(12), 7645-7649. doi:10.1021/acs.nanolett.6b03637

Xiao, J., Shang, Q., Xiong, Y., Zhang, Q., Luo, Y., Yu, S., & Jiang, H. (2016). Boosting Photocatalytic Hydrogen Production of a Metal–Organic Framework Decorated with Platinum Nanoparticles: The Platinum Location Matters. Angewandte Chemie International Edition, 55(32), 9389-9393. doi:10.1002/anie.201603990

Xiao, J., Shang, Q., Xiong, Y., Zhang, Q., Luo, Y., Yu, S., & Jiang, H. (2016). Boosting Photocatalytic Hydrogen Production of a Metal–Organic Framework Decorated with Platinum Nanoparticles: The Platinum Location Matters. Angewandte Chemie, 128(32), 9535-9539. doi:10.1002/ange.201603990

Stallmach, F., Gröger, S., Künzel, V., Kärger, J., Yaghi, O. M., Hesse, M., & Müller, U. (2006). NMR Studies on the Diffusion of Hydrocarbons on the Metal-Organic Framework Material MOF-5. Angewandte Chemie International Edition, 45(13), 2123-2126. doi:10.1002/anie.200502553

Stallmach, F., Gröger, S., Künzel, V., Kärger, J., Yaghi, O. M., Hesse, M., & Müller, U. (2006). NMR-Untersuchungen zur Diffusion von Kohlenwasserstoffen im metall-organischen Netzwerk MOF-5. Angewandte Chemie, 118(13), 2177-2181. doi:10.1002/ange.200502553

Salles, F., Kolokolov, D. I., Jobic, H., Maurin, G., Llewellyn, P. L., Devic, T., … Ferey, G. (2009). Adsorption and Diffusion of H2 in the MOF Type Systems MIL-47(V) and MIL-53(Cr): A Combination of Microcalorimetry and QENS Experiments with Molecular Simulations. The Journal of Physical Chemistry C, 113(18), 7802-7812. doi:10.1021/jp811190g

Yang, Q., Jobic, H., Salles, F., Kolokolov, D., Guillerm, V., Serre, C., & Maurin, G. (2011). Probing the Dynamics of CO2 and CH4 within the Porous Zirconium Terephthalate UiO-66(Zr): A Synergic Combination of Neutron Scattering Measurements and Molecular Simulations. Chemistry - A European Journal, 17(32), 8882-8889. doi:10.1002/chem.201003596

Lu, G., Li, S., Guo, Z., Farha, O. K., Hauser, B. G., Qi, X., … Huo, F. (2012). Imparting functionality to a metal–organic framework material by controlled nanoparticle encapsulation. Nature Chemistry, 4(4), 310-316. doi:10.1038/nchem.1272

Na, K., Choi, K. M., Yaghi, O. M., & Somorjai, G. A. (2014). Metal Nanocrystals Embedded in Single Nanocrystals of MOFs Give Unusual Selectivity as Heterogeneous Catalysts. Nano Letters, 14(10), 5979-5983. doi:10.1021/nl503007h

Hu, P., Zhuang, J., Chou, L.-Y., Lee, H. K., Ling, X. Y., Chuang, Y.-C., & Tsung, C.-K. (2014). Surfactant-Directed Atomic to Mesoscale Alignment: Metal Nanocrystals Encased Individually in Single-Crystalline Porous Nanostructures. Journal of the American Chemical Society, 136(30), 10561-10564. doi:10.1021/ja5048522

Choi, K. M., Kim, D., Rungtaweevoranit, B., Trickett, C. A., Barmanbek, J. T. D., Alshammari, A. S., … Yaghi, O. M. (2016). Plasmon-Enhanced Photocatalytic CO2 Conversion within Metal–Organic Frameworks under Visible Light. Journal of the American Chemical Society, 139(1), 356-362. doi:10.1021/jacs.6b11027

Bruix, A., Rodriguez, J. A., Ramírez, P. J., Senanayake, S. D., Evans, J., Park, J. B., … Illas, F. (2012). A New Type of Strong Metal–Support Interaction and the Production of H2 through the Transformation of Water on Pt/CeO2(111) and Pt/CeOx/TiO2(110) Catalysts. Journal of the American Chemical Society, 134(21), 8968-8974. doi:10.1021/ja302070k

Zhai, Y., Pierre, D., Si, R., Deng, W., Ferrin, P., Nilekar, A. U., … Flytzani-Stephanopoulos, M. (2010). Alkali-Stabilized Pt-OHx Species Catalyze Low-Temperature Water-Gas Shift Reactions. Science, 329(5999), 1633-1636. doi:10.1126/science.1192449

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