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Oxidation of Nanomaterials
01.01.2004 - 31.03.2007
Forschungsförderungsprojekt
Understanding the oxidation of surfaces, interfaces and nanoparticles under ambient oxygen pressures and the technical ability to atomically control the oxidation of nanomaterials under industrially and environmentally relevant conditions are considered to be important milestones for future nanotechnologies. Substantial effort has been devoted to understanding oxidation fundamentals within the past few decades using pioneering-type experiments under highly idealized conditions, such as very low oxygen pressures (10-6 mbar), and idealized, model material systems (single crystals). The main mission of NanO2 is to bridge this pressure- and materials-gap in the understanding of the interaction of oxygen with metallic nanoparticles, so that industrially relevant conditions are scientifically understood. NanO2 will overcome these barriers by systematically investigating the size and shape dependence of high pressure oxidation of nanomaterials in a novel approach: surface sensitive in-situ techniques for high oxygen pressures and temperatures and ab-initio thermodynamic calculations will be combined in a unique, revolutionary way to tailor the nanomaterial shape and to predict their performance in industrial processes and under environmental conditions.
Personen
Projektleiter_in
Peter Varga
(E134)
Subprojektleiter_in
Michael Schmid
(E134)
Projektmitarbeiter_innen
Jan Klikovits
(E134)
Institut
E134 - Institute of Applied Physics
Grant funds
European Commission (EU)
6.FP: NMP - Nanotechnologies and -sciences, knowledge-based multifunct. materials & new production
6.Rahmenprogramm für Forschung
European Commission - Framework Programme
European Commission
Call identifier Was ist das?
Application number 505670
Forschungsschwerpunkte
Sustainable Production and Technologies: 20%
Surfaces and Interfaces: 40%
Materials Characterization: 40%
Externe Partner_innen
Philips Applied Technologies
ARMINES, Association pour la Recherche et le Developpement des Methodes et Processus Industriels
Econovum Akademia Budapest
OptoSurf GmbH
AC2T Research GmbH
Institute of Nuclear Research of the Hungarian Academy of Science
SKF Engineering and Research Centre
Imperial College
University of Ljubljana
Cardiff University
Institute of Sustainable Technologies
NanoFocus AG
Universität Hannover
Publikationen
Publikationsliste