It is has been established that the excess electrons in small (i.e., n < or = 7) (H2O)n- clusters are bound in the dipole field of the neutral cluster and, thus, exist as surface states. However, the motifs for the binding of an excess electron to larger water clusters remain the subject of considerable debate. The prevailing view is that electrostatic interactions with the "free" OH bonds of the cluster dominate the binding of the excess electron in both small and large clusters. In the present study, a quantum Drude model is used to study selected (H2O)n- clusters in the n = 12-24 size range with the goal of elucidating different possible binding motifs. In addition to the known surface and cavity states, we identify a new binding motif, ...
Quantum chemical investigations are carried out to determine the structure and energetics of anionic...
The problem of the binding of an excess electron to polar molecules and their clusters with sufficie...
Author Institution: Department of Chemistry, The Ohio State University,; Columbus, OH 43210Electron...
It is has been established that the excess electrons in small (i.e., n ≤ 7) (H2O)n- clusters are bou...
Cluster anions for which the excess electron occupies an extended nonvalence orbital can be describe...
Cluster anions for which the excess electron occupies an extended nonvalence orbital can be describe...
Cluster anions for which the excess electron occupies an extended nonvalence orbital can be describe...
In this work we focus on the binding of excess electrons to water clusters, a problem for which disp...
In this work we focus on the binding of excess electrons to water clusters, a problem for which disp...
Author Institution: Department of Chemistry, Yale University, New Haven, CT 06520Negatively charged ...
The structure and energetics of water-ammonia mixed clusters with an excess electron, [(H2O)n(NH3)m]...
A one-electron model potential approach for calculating the binding energies of an excess electron\u...
A one-electron model potential approach for calculating the binding energies of an excess electron\u...
The size dependence of the binding energy of a localized excess electron in large water clusters ori...
ABSTRACT: Water cluster anions, (H2O)N , are examined using mixed quantum/classical molecular dynami...
Quantum chemical investigations are carried out to determine the structure and energetics of anionic...
The problem of the binding of an excess electron to polar molecules and their clusters with sufficie...
Author Institution: Department of Chemistry, The Ohio State University,; Columbus, OH 43210Electron...
It is has been established that the excess electrons in small (i.e., n ≤ 7) (H2O)n- clusters are bou...
Cluster anions for which the excess electron occupies an extended nonvalence orbital can be describe...
Cluster anions for which the excess electron occupies an extended nonvalence orbital can be describe...
Cluster anions for which the excess electron occupies an extended nonvalence orbital can be describe...
In this work we focus on the binding of excess electrons to water clusters, a problem for which disp...
In this work we focus on the binding of excess electrons to water clusters, a problem for which disp...
Author Institution: Department of Chemistry, Yale University, New Haven, CT 06520Negatively charged ...
The structure and energetics of water-ammonia mixed clusters with an excess electron, [(H2O)n(NH3)m]...
A one-electron model potential approach for calculating the binding energies of an excess electron\u...
A one-electron model potential approach for calculating the binding energies of an excess electron\u...
The size dependence of the binding energy of a localized excess electron in large water clusters ori...
ABSTRACT: Water cluster anions, (H2O)N , are examined using mixed quantum/classical molecular dynami...
Quantum chemical investigations are carried out to determine the structure and energetics of anionic...
The problem of the binding of an excess electron to polar molecules and their clusters with sufficie...
Author Institution: Department of Chemistry, The Ohio State University,; Columbus, OH 43210Electron...