Electronic interactions between metal nanoparticles and oxide supports control the functionality of nanomaterials, for example, the stability, the activity, and the selectivity of catalysts.1-5 Such interactions involve electron transfer across the metal/support interface. In this work we quantify this charge transfer on a well-defined platinum/ceria catalyst at particle sizes relevant for heterogeneous catalysis. Combining synchrotron-radiation photoelectron spectroscopy, scanning tunneling microscopy, and density functional calculations we show that the charge transfer per Pt atom is largest for Pt particles of around 50 atoms. Here, approximately 1 electron is transferred per 10 Pt atoms from the nanoparticle to the support. For larger p...
State-of-the-art catalysts are often created via deposition of monolayers, sub-monolayers or nanopar...
To apply the knowledge of reaction mechanisms of heterogeneously catalyzed reactions on the atomic s...
Oxide supports can modify and stabilize platinum nanoparticles (NPs) in electrocatalytic materials. ...
Interactions between transition metal nanoparticles and reducible oxide supports are thought to sign...
Model systems are very important to identify the working principles of real catalysts, and to develo...
The role of charge transfer at the metal-oxide interface is a long-standing issue in surface chemist...
The concept of single atom catalysis offers maximum noble metal efficiency for the development of lo...
Electronic metal-support interactions (EMSI) in catalysis are commonly rationalized in terms of an e...
In chemistry and physics the electronic charge on a species or material is one important determinant...
Improvements in durability and performance of cathode catalyst layers in polymer electrolyte fuel ce...
Metal-support interactions can dramatically affect the properties of nanocomposite materials. Nevert...
Electrochemical promotion and metal-support interaction (MSI) have long been viewed as two separate ...
Electronic metal–support interactions (EMSI) in catalysis are commonly rationalized in terms of an e...
The development of model catalyst systems for heterogeneous catalysis going beyond the metal single ...
Generation of hot electron flows and the catalytic activity of Pt nanoparticles (NPs) with different...
State-of-the-art catalysts are often created via deposition of monolayers, sub-monolayers or nanopar...
To apply the knowledge of reaction mechanisms of heterogeneously catalyzed reactions on the atomic s...
Oxide supports can modify and stabilize platinum nanoparticles (NPs) in electrocatalytic materials. ...
Interactions between transition metal nanoparticles and reducible oxide supports are thought to sign...
Model systems are very important to identify the working principles of real catalysts, and to develo...
The role of charge transfer at the metal-oxide interface is a long-standing issue in surface chemist...
The concept of single atom catalysis offers maximum noble metal efficiency for the development of lo...
Electronic metal-support interactions (EMSI) in catalysis are commonly rationalized in terms of an e...
In chemistry and physics the electronic charge on a species or material is one important determinant...
Improvements in durability and performance of cathode catalyst layers in polymer electrolyte fuel ce...
Metal-support interactions can dramatically affect the properties of nanocomposite materials. Nevert...
Electrochemical promotion and metal-support interaction (MSI) have long been viewed as two separate ...
Electronic metal–support interactions (EMSI) in catalysis are commonly rationalized in terms of an e...
The development of model catalyst systems for heterogeneous catalysis going beyond the metal single ...
Generation of hot electron flows and the catalytic activity of Pt nanoparticles (NPs) with different...
State-of-the-art catalysts are often created via deposition of monolayers, sub-monolayers or nanopar...
To apply the knowledge of reaction mechanisms of heterogeneously catalyzed reactions on the atomic s...
Oxide supports can modify and stabilize platinum nanoparticles (NPs) in electrocatalytic materials. ...