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- W2015944239 abstract "Model nano-catalysts with monodisperse particle sizes and architectures are essential for a fundamental understanding of surface property dynamics during catalytic reactions. Surface tools and techniques, when conducted under catalytically relevant temperature and pressure conditions, render possible measurements of dynamic surface properties such as oxidation state, composition, coordination, and bonding. Near edge X-ray absorption fine structure (NEXAFS) spectroscopy with purposely built in situ reaction cells and ambient pressure X-ray photoelectron spectroscopy (APXPS) provide (near) surface sensitive and chemical specific information on the oxidation states of metal and oxide (co-)catalysts as well as adsorbent functional elements such C, O and N under reactive gas atmospheres and even liquid environments. Likewise, sum frequency generation (SFG) vibrational spectroscopy with in situ reaction cells helps uncover the bonding geometry and configuration of the topmost surface again under conditions pertinent to catalysis. Furthermore, the local dynamics in the nanoscale and on the single particle level are revealed by environmental transmission electron microscopy (ETEM) and the spectro-microscopy techniques equipped within. A correlative approach, where an array of these in situ tools and techniques were conducted in parallel with catalytic measurements, was employed to gain molecular insight into some of the modern scientific challenges in heterogeneous catalysis. Several case examples of this correlative approach are presented here. The CO oxidation reaction over hybrid nano-catalysts of Pt nanoparticles (NPs) with various mesoporous metal oxides such as Co3O4, MnO2 and CeO2 was explored in relation to bifunctional catalysis and interfacial charge transfer chemistry by using in situ NEXAFS spectroscopy. Likewise, bimetallic CoPt and PtSn nanoparticle catalysts supported on silica were investigated by using a combination of in situ NEXAFS spectroscopy and APXPS. Next, CO2 hydrogenation was carried out over bimetallic CoPt/SiO2 and Co/TiO2 hybrid nano-catalysts. In this case, in situ NEXAFS spectroscopy, APXPS, and ETEM indicated severe, yet reversible, surface restructuring that involved hydrogen atom spillover. Finally, ~2 nm Pt NPs were investigated using in situ SFG to study hydrogenation and hydrogenative isomerization reactions. Specifically, SFG indicated that the hydrogenation of furfural and crotonaldehyde proceed by interfacial hydrogen atom spillover from TiO2, while the hydrogenative isomerization of methylcyclopentane (MCP) proceeds by spillover and surface diffusion of cyclohexene over mesoporous zeolites. These studies unequivocally indicated the presence of a particular reaction channel that involved one way flow of charged (i.e. electrons or protons) or neutral species (i.e. reactants) at a broadly defined interface between metals and oxides. In addition to these case studies, experimental approaches employing capillary flow micro-reactors are discussed in relation toward the goal of short time resolutions that could help isolate such charged or neutral intermediates in the future." @default.
- W2015944239 created "2016-06-24" @default.
- W2015944239 creator A5047653774 @default.
- W2015944239 creator A5058666235 @default.
- W2015944239 date "2014-11-18" @default.
- W2015944239 modified "2023-10-16" @default.
- W2015944239 title "Nanocatalysis II: In Situ Surface Probes of Nano-Catalysts and Correlative Structure–Reactivity Studies" @default.
- W2015944239 cites W1539169903 @default.
- W2015944239 cites W1591362861 @default.
- W2015944239 cites W1603328944 @default.
- W2015944239 cites W1734743771 @default.
- W2015944239 cites W1752206475 @default.
- W2015944239 cites W1964553820 @default.
- W2015944239 cites W1964562694 @default.
- W2015944239 cites W1967028254 @default.
- W2015944239 cites W1967438379 @default.
- W2015944239 cites W1967765688 @default.
- W2015944239 cites W1968682300 @default.
- W2015944239 cites W1971142553 @default.
- W2015944239 cites W1971904688 @default.
- W2015944239 cites W1972725254 @default.
- W2015944239 cites W1974026531 @default.
- W2015944239 cites W1978726185 @default.
- W2015944239 cites W1978885192 @default.
- W2015944239 cites W1979502067 @default.
- W2015944239 cites W1980222515 @default.
- W2015944239 cites W1985021632 @default.
- W2015944239 cites W1989598912 @default.
- W2015944239 cites W1991040581 @default.
- W2015944239 cites W1991656645 @default.
- W2015944239 cites W1991685888 @default.
- W2015944239 cites W1991719800 @default.
- W2015944239 cites W1993438498 @default.
- W2015944239 cites W1996125625 @default.
- W2015944239 cites W1996155000 @default.
- W2015944239 cites W1997825945 @default.
- W2015944239 cites W1998038143 @default.
- W2015944239 cites W1999138803 @default.
- W2015944239 cites W1999173254 @default.
- W2015944239 cites W1999720804 @default.
- W2015944239 cites W2002091475 @default.
- W2015944239 cites W2002885602 @default.
- W2015944239 cites W2003021954 @default.
- W2015944239 cites W2006526735 @default.
- W2015944239 cites W2007117531 @default.
- W2015944239 cites W2007889231 @default.
- W2015944239 cites W2009366061 @default.
- W2015944239 cites W2011348299 @default.
- W2015944239 cites W2011777203 @default.
- W2015944239 cites W2012174601 @default.
- W2015944239 cites W2015416162 @default.
- W2015944239 cites W2016076421 @default.
- W2015944239 cites W2018475633 @default.
- W2015944239 cites W2019038783 @default.
- W2015944239 cites W2020241645 @default.
- W2015944239 cites W2020682670 @default.
- W2015944239 cites W2021115087 @default.
- W2015944239 cites W2024767469 @default.
- W2015944239 cites W2025851249 @default.
- W2015944239 cites W2027750580 @default.
- W2015944239 cites W2027810880 @default.
- W2015944239 cites W2028772684 @default.
- W2015944239 cites W2029135228 @default.
- W2015944239 cites W2031012777 @default.
- W2015944239 cites W2031568811 @default.
- W2015944239 cites W2032364562 @default.
- W2015944239 cites W2034039787 @default.
- W2015944239 cites W2034094352 @default.
- W2015944239 cites W2034521623 @default.
- W2015944239 cites W2035266089 @default.
- W2015944239 cites W2035519311 @default.
- W2015944239 cites W2038055190 @default.
- W2015944239 cites W2038903361 @default.
- W2015944239 cites W2040457931 @default.
- W2015944239 cites W2040816833 @default.
- W2015944239 cites W2043021908 @default.
- W2015944239 cites W2044842642 @default.
- W2015944239 cites W2046795439 @default.
- W2015944239 cites W2048977387 @default.
- W2015944239 cites W2051302811 @default.
- W2015944239 cites W2053221100 @default.
- W2015944239 cites W2055458683 @default.
- W2015944239 cites W2056507429 @default.
- W2015944239 cites W2059768948 @default.
- W2015944239 cites W2063703363 @default.
- W2015944239 cites W2064630801 @default.
- W2015944239 cites W2068889900 @default.
- W2015944239 cites W2071637622 @default.
- W2015944239 cites W2075924763 @default.
- W2015944239 cites W2076686224 @default.
- W2015944239 cites W2080072672 @default.
- W2015944239 cites W2081717144 @default.
- W2015944239 cites W2081891034 @default.
- W2015944239 cites W2082501332 @default.
- W2015944239 cites W2082709469 @default.
- W2015944239 cites W2087959676 @default.
- W2015944239 cites W2088249325 @default.
- W2015944239 cites W2089024520 @default.