Oxide supports can modify and stabilize platinum nanoparticles (NPs) in electrocatalytic materials. We studied related phenomena on model systems consisting of Pt NPs on atomically defined Co3O4(111) thin films. Chemical states and dissolution behavior of model catalysts were investigated as a function of the particle size and the electrochemical potential by ex situ emersion synchrotron radiation photoelectron spectroscopy and by online inductively coupled plasma mass spectrometry. Electronic metal–support interaction (EMSI) yields partially oxidized Ptδ+ species at the metal/support interface of metallic nanometer-sized Pt NPs. In contrast, subnanometer particles form Ptδ+ aggregates that are exclusively accompanied by subsurface Pt4+ spe...
5 pags., 3 figs.We have studied the adsorption and electrooxidation of CO on PtAu nanoalloys, aiming...
Redox-active support materials can help reduce the noble-metal loading of a solid chemical catalyst ...
A detrimental effect of CO on the stability of Pt nanoparticles, which is important for fuel cells t...
Electronic metal–support interactions play a key role in the design of heterogeneous catalysts, as t...
Using a variety of in situ techniques, we tracked the structural stability and concomitantly the ele...
We have studied particle size effects on atomically-defined model catalysts both in ultrahigh vacuum...
Electrocatalysis is at the heart of our future transition to a renewable energy system. Most energy ...
Different substrates supported Pt-based electrocatalysts via carbonyl route and photo-deposition met...
© 2019 The Royal Society of Chemistry.The strong metal-oxide interaction of platinum nanoparticles (...
Identifying the structural response of nanoparticle–support ensembles to the reaction conditions is ...
A detailed understanding of oxidation/dissolution mechanisms of Pt is critical in designing durable ...
A promising strategy for achieving enhanced catalytic activity involves the use of nanoscale electro...
A major challenge in electrocatalysis is to understand the effect of electrochemical processes on th...
Since catalytic performance of platinum–metal (Pt–M) nanoparticles is primarily determined by the ch...
Knowledge of degradation pathways of catalyst/support ensembles aids the development of rational str...
5 pags., 3 figs.We have studied the adsorption and electrooxidation of CO on PtAu nanoalloys, aiming...
Redox-active support materials can help reduce the noble-metal loading of a solid chemical catalyst ...
A detrimental effect of CO on the stability of Pt nanoparticles, which is important for fuel cells t...
Electronic metal–support interactions play a key role in the design of heterogeneous catalysts, as t...
Using a variety of in situ techniques, we tracked the structural stability and concomitantly the ele...
We have studied particle size effects on atomically-defined model catalysts both in ultrahigh vacuum...
Electrocatalysis is at the heart of our future transition to a renewable energy system. Most energy ...
Different substrates supported Pt-based electrocatalysts via carbonyl route and photo-deposition met...
© 2019 The Royal Society of Chemistry.The strong metal-oxide interaction of platinum nanoparticles (...
Identifying the structural response of nanoparticle–support ensembles to the reaction conditions is ...
A detailed understanding of oxidation/dissolution mechanisms of Pt is critical in designing durable ...
A promising strategy for achieving enhanced catalytic activity involves the use of nanoscale electro...
A major challenge in electrocatalysis is to understand the effect of electrochemical processes on th...
Since catalytic performance of platinum–metal (Pt–M) nanoparticles is primarily determined by the ch...
Knowledge of degradation pathways of catalyst/support ensembles aids the development of rational str...
5 pags., 3 figs.We have studied the adsorption and electrooxidation of CO on PtAu nanoalloys, aiming...
Redox-active support materials can help reduce the noble-metal loading of a solid chemical catalyst ...
A detrimental effect of CO on the stability of Pt nanoparticles, which is important for fuel cells t...