Metal Nanoparticles Immobilized on Molecularly Modified Surfaces: Versatile Catalytic Systems for Controlled Hydrogenation and Hydrogenolysis

被引:61
作者
Bordet, Alexis [1 ]
Leitner, Walter [1 ,2 ]
机构
[1] Max Planck Inst Chem Energy Convers, D-45470 Mulheim, Germany
[2] Rhein Westfal TH Aachen, Inst Tech & Makromol Chem, D-52074 Aachen, Germany
关键词
SELECTIVE HYDROGENATION; BIMETALLIC CATALYSTS; RUTHENIUM NANOPARTICLES; BIFUNCTIONAL CATALYSTS; METHANOL SYNTHESIS; SILP CATALYSTS; GRAPHENE OXIDE; AT-SILP; HYDRODEOXYGENATION; BIOMASS;
D O I
10.1021/acs.accounts.1c00013
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
CONSPECTUS: The synthesis and use of supported metal nanoparticle catalysts have a long-standing tradition in catalysis, typically associated with the field of heterogeneous catalysis. More recently, the development and understanding of catalytic systems composed of metal nanoparticles (NPs) that are synthesized from organometallic precursors on molecularly modified surfaces (MMSs) have opened a conceptually new approach to the design of multifunctional catalysts (NPs@MMS). These complex yet fascinating materials bridge molecular ("homogeneous") and material ("heterogeneous") approaches to catalysis and provide access to catalytic systems with tailor-made reactivity through judicious combinations of supports, molecular modifiers, and nanoparticle precursors. A particularly promising field of application is the controlled activation and transfer of dihydrogen, enabling highly selective hydrogenation and hydrogenolysis reactions as relevant for the conversion of biogenic feedstocks and platform chemicals as well as for novel synthetic pathways to fine chemicals and even pharmaceuticals. Consequently, the topic offers an emerging field for interdisciplinary research activities involving organometallic chemists, material scientists, synthetic organic chemists, and catalysis experts. This Account will provide a brief overview of the historical background and cover examples from the most recent developments in the field. A coherent account on the methodological and experimental basis will be given from the long-standing experience in our laboratories. MMSs are widely accessible via chemisorption and physisorption methods for the generation of stable molecular environments on solid surfaces, whereby a special emphasis is given here to ionic liquid-type molecules as modifiers (supported ionic liquid phases, SILPs) and silica as support material. Metal nanoparticles are synthesized following an organometallic approach, allowing the controlled formation of small and uniformly dispersed monometallic or multimetallic NPs in defined composition. A combination of techniques from molecular and material characterization provides a detailed insight into the structure of the resulting materials across various scales (electron microscopy, solid-state NMR, XPS, XAS, etc.). The molecular functionalities grafted on the silica surface have a pronounced influence on the formation, stabilization, and reactivity of the NPs. The complementary and synergistic fine-tuning of the metal and its molecular environment in NPs@MMSs allow in particular the control of the activation of hydrogen and its transfer to substrates. Monometallic (Ru, Rh, Pd) monofunctional NPs@ MMSs possess excellent activities for the hydrogenation of alkenes, alkynes, and arenes for which a nonpolarized (homolytic) activation of H-2 is predominant. The incorporation of 3d metals in noble metal NPs to give bimetallic (FeRu, CoRh, etc.) monofunctional NPs@MMSs favors a more polarized H-2 activation and thus its transfer to the C=O bond, while at the same time preventing the arrangement of noble metal atoms necessary for ring hydrogenation. The incorporation of reactive functionalities, such as, for example, a -SO3H moiety on NPs@MMSs, results in bifunctional catalysts enabling the heterolytic cleavage corresponding to a formal H-/H+ transfer. Consequently, such catalysts possess excellent deoxygenation activity with strong synergistic effects arising from an intimate contact between the nanoparticles and the molecular functionality. While many more efforts are still required to explore, control, and understand the chemistry of NPs@MMS catalysts fully, the currently available examples already highlight the large potential of this approach for the rational design of multifunctional catalytic systems.
引用
收藏
页码:2144 / 2157
页数:14
相关论文
共 61 条
  • [1] Bimetallic catalysts for upgrading of biomass to fuels and chemicals
    Alonso, David Martin
    Wettstein, Stephanie G.
    Dumesic, James A.
    [J]. CHEMICAL SOCIETY REVIEWS, 2012, 41 (24) : 8075 - 8098
  • [2] Organometallic approach for the synthesis of nanostructures
    Amiens, Catherine
    Chaudret, Bruno
    Ciuculescu-Pradines, Diana
    Colliere, Vincent
    Fajerwerg, Katia
    Fau, Pierre
    Kahn, Myrtil
    Maisonnat, Andre
    Soulantica, Katerina
    Philippot, Karine
    [J]. NEW JOURNAL OF CHEMISTRY, 2013, 37 (11) : 3374 - 3401
  • [3] Behrens M, 2012, SCIENCE, V336, P893, DOI [10.1126/science.1219831, 10.1126/science.12198331]
  • [4] CO2-switchable drying agents
    Boniface, Kyle J.
    Dykeman, Ryan R.
    Cormier, Alex
    Wang, Hong-Bo
    Mercer, Sean M.
    Liu, Guojun
    Cunningham, Michael. F.
    Jessop, Philip G.
    [J]. GREEN CHEMISTRY, 2016, 18 (01) : 208 - 213
  • [5] Bordet A., 2021, NAT CHEM
  • [6] Molecular Control of the Catalytic Properties of Rhodium Nanoparticles in Supported Ionic Liquid Phase (SILP) Systems
    Bordet, Alexis
    Moos, Gilles
    Welsh, Calum
    Licence, Peter
    Luska, Kylie L.
    Leitner, Walter
    [J]. ACS CATALYSIS, 2020, 10 (23): : 13904 - 13912
  • [7] Magnetically Induced Continuous CO2 Hydrogenation Using Composite Iron Carbide Nanoparticles of Exceptionally High Heating Power
    Bordet, Alexis
    Lacroix, Lise-Marie
    Fazzini, Pier-Francesco
    Carrey, Julian
    Soulantica, Katerina
    Chaudret, Bruno
    [J]. ANGEWANDTE CHEMIE-INTERNATIONAL EDITION, 2016, 55 (51) : 15894 - 15898
  • [8] Dihydrobenzofuran Neolignanamides: Lactase-Mediated Biomimetic Synthesis and Antiproliferative Activity
    Cardullo, Nunzio
    Pulvirenti, Luana
    Spatafora, Carmela
    Musso, Nicolo
    Barresi, Vincenza
    Condorelli, Daniele Filippo
    Tringalii, Corrado
    [J]. JOURNAL OF NATURAL PRODUCTS, 2016, 79 (08): : 2122 - 2134
  • [9] Tuning the Catalytic Activity and Selectivity of Pd Nanoparticles Using Ligand-Modified Supports and Surfaces
    da Silva, Fernanda Parra
    Fiorio, Jhonatan Luiz
    Rossi, Liane Marcia
    [J]. ACS OMEGA, 2017, 2 (09): : 6014 - 6022
  • [10] Catalysis using multifunctional organosiliceous hybrid materials
    Diaz, Urbano
    Brunel, Daniel
    Corma, Avelino
    [J]. CHEMICAL SOCIETY REVIEWS, 2013, 42 (09) : 4083 - 4097