Science · 2010 · 327 citations · 20 references
EngineeringOxidation ResistanceRedox Phase EquilibriaChemistryChemical EngineeringNanoscale ChemistryTransition MetalMaterials ScienceRedox EquilibriaNanotechnologyOxide ElectronicsPhysical ChemistryNanocrystalline MaterialOxidation-reduction EquilibriaOxygen Reduction ReactionNanomaterialsSurface ScienceChemical KineticsSurface Reactivity
Knowing the thermodynamic stability of transition metal oxide nanoparticles is important for understanding and controlling their role in a variety of industrial and environmental systems. Using calorimetric data on surface energies for cobalt, iron, manganese, and nickel oxide systems, we show that surface energy strongly influences their redox equilibria and phase stability. Spinels (M(3)O(4)) commonly have lower surface energies than metals (M), rocksalt oxides (MO), and trivalent oxides (M(2)O(3)) of the same metal; thus, the contraction of the stability field of the divalent oxide and expansion of the spinel field appear to be general phenomena. Using tabulated thermodynamic data for bulk phases to calculate redox phase equilibria at the nanoscale can lead to errors of several orders of magnitude in oxygen fugacity and of 100 to 200 kelvin in temperature.
20
Zener Model Description of Ferromagnetism in Zinc-Blende Magnetic Semiconductors
T. Dietl, Hideo Ohno, F. Matsukura et al. · Science · 2000 · 7.6K citations
Low-temperature oxidation of CO catalysed by Co3O4 nanorods
Xiaowei Xie, Yong Li, Zhi‐Quan Liu et al. · Nature · 2009 · 2.6K citations
Oxygen Reduction Reaction, Low-temperature Oxidation, Single-atom Catalyst +3