OXIDESYNERGY

Understanding the Atomic Scale Synergies of Catalytically Active Nanoclusters on Metal Oxide Surfaces

 Coordinatore AARHUS UNIVERSITET 

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 Nazionalità Coordinatore Denmark [DK]
 Totale costo 1˙050˙000 €
 EC contributo 1˙050˙000 €
 Programma FP7-IDEAS-ERC
Specific programme: "Ideas" implementing the Seventh Framework Programme of the European Community for research, technological development and demonstration activities (2007 to 2013)
 Code Call ERC-2009-StG
 Funding Scheme ERC-SG
 Anno di inizio 2009
 Periodo (anno-mese-giorno) 2009-10-01   -   2014-09-30

 Partecipanti

# participant  country  role  EC contrib. [€] 
1    AARHUS UNIVERSITET

 Organization address address: Nordre Ringgade 1
city: AARHUS C
postcode: 8000

contact info
Titolo: Dr.
Nome: Jeppe Vang
Cognome: Lauritsen
Email: send email
Telefono: -14434
Fax: -12587

DK (AARHUS C) hostInstitution 1˙050˙000.00
2    AARHUS UNIVERSITET

 Organization address address: Nordre Ringgade 1
city: AARHUS C
postcode: 8000

contact info
Titolo: Ms.
Nome: Anne
Cognome: Naerø
Email: send email
Telefono: +45 8942 5548
Fax: +45 8942 3596

DK (AARHUS C) hostInstitution 1˙050˙000.00

Mappa


 Word cloud

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metal    catalytic    insulating    catalysts    atomic    structure    nc    model    experimental    characterization    afm    oxides   

 Obiettivo del progetto (Objective)

'The research theme concerns the application of new experimental methods for atomic-scale characterization of model catalysts based on insulating metal oxides with the goal of exploring the potential for designing new and efficient heterogeneous catalysts by enhanced control of the catalyst structure at the atomic level. This objective will be achieved by a carefully integrated sequence of synthesis, characterization, and reactivity measurements of model catalysts based on insulating metal oxides. The project aims in detail at resolving some pertinent support synergies and size-effects, which have been revealed in catalytic systems. A core challenge and advance, which sets the project apart from previous research, is the application of high-resolution non contact Atomic Force Microscopy (nc-AFM), which is the only available tool that can resolve the atomic structure of insulator surfaces and the morphology of supported nanoclusters. I will combine my proven experience with atom-resolved imaging using nc-AFM with novel methods for synthesizing and analyzing model catalysts, to provide groundbreaking new atomistic insight. A crucial aspect will be the ability to relate nc-AFM observations to actual catalytic properties, and this will be achieved by using complementary surface spectroscopies and reaction measurements performed at real high pressure conditions. I firmly believe that this research strategy can provide the key insight to a significantly better understanding of the numerous catalytic systems based on insulating metal oxides, and this project will enable me to set up a unique world-class experimental facility for such studies.'

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