Atomically flat, single-crystal solid-liquid interfaces attract considerable interest through their electrochemical relevance and well-defined structure facilitating controlled atomistic characterization. Yet, crucial details especially regarding the nanoscale adlayer-water dynamics remain uncertain. Here, the influence of adsorbate coverage on the interfacial structure and solvent relaxation on hydrogenated Pt(111) is examined by extensive density functional molecular dynamics simulations. Pronounced water dynamics is observed with increasing hydrogen coverage, for which an interpretation based on displacement of specifically co-adsorbed water and strong screening of the electrostatic interaction across the interface is proposed. However, ...
Understanding the electrode–water interface structure in acid and alkali is crucial to unveiling the...
Understanding the electrode–water interface structure in acid and alkali is crucial to unveiling the...
Understanding the electrode–water interface structure in acid and alkali is crucial to unveiling the...
Atomically flat, single-crystal solid–liquid interfaces attract considerable interest through their ...
Density functional theory molecular dynamics simulations of H-covered Pt(111)-H2O interfaces reveal ...
Adsorbates at the electrode change the structure of the electrode/electrolyte interface. Despite the...
The interface between an electrode and an electrolyte is where electrochemical processes take place ...
Unraveling the atomistic structures of electric double layers (EDL) at electrified interfaces is of ...
International audienceThe electrified solid–liquid interface plays an essential role in many renewab...
Unraveling the atomistic structures of electric double layers (EDL) at electrified interfaces is of ...
An accurate atomistic treatment of aqueous solid–liquid interfaces necessitates the explicit descrip...
We discuss grand canonical simulations based on density-functional theory to study the thermodynamic...
R.K. acknowledges the School of Chemical Engineering of Aalto University for funding in the form of ...
Platinum is a noble metal that is widely used for the electrocatalytic production of hydrogen, but t...
Hydrogen evolution on platinum is a key reaction for electrocatalysis and sustainable energy storage...
Understanding the electrode–water interface structure in acid and alkali is crucial to unveiling the...
Understanding the electrode–water interface structure in acid and alkali is crucial to unveiling the...
Understanding the electrode–water interface structure in acid and alkali is crucial to unveiling the...
Atomically flat, single-crystal solid–liquid interfaces attract considerable interest through their ...
Density functional theory molecular dynamics simulations of H-covered Pt(111)-H2O interfaces reveal ...
Adsorbates at the electrode change the structure of the electrode/electrolyte interface. Despite the...
The interface between an electrode and an electrolyte is where electrochemical processes take place ...
Unraveling the atomistic structures of electric double layers (EDL) at electrified interfaces is of ...
International audienceThe electrified solid–liquid interface plays an essential role in many renewab...
Unraveling the atomistic structures of electric double layers (EDL) at electrified interfaces is of ...
An accurate atomistic treatment of aqueous solid–liquid interfaces necessitates the explicit descrip...
We discuss grand canonical simulations based on density-functional theory to study the thermodynamic...
R.K. acknowledges the School of Chemical Engineering of Aalto University for funding in the form of ...
Platinum is a noble metal that is widely used for the electrocatalytic production of hydrogen, but t...
Hydrogen evolution on platinum is a key reaction for electrocatalysis and sustainable energy storage...
Understanding the electrode–water interface structure in acid and alkali is crucial to unveiling the...
Understanding the electrode–water interface structure in acid and alkali is crucial to unveiling the...
Understanding the electrode–water interface structure in acid and alkali is crucial to unveiling the...