We present a model potential for studying Mq+(H2O)n=1,9 clusters where M stands for either Na+, Cs+, Ca2+, Ba2+, or La3+. The potential energy surfaces (PES) are explored by the Monte Carlo growth method. The results for the most significant equilibrium structures of the PES as well as for energetics are favorably compared to the best ab initio calculations found in the literature and to experimental results. Most of these complexes have a different coordination number in cluster compared to experimental results in solution or solid phase. An interpretation of the coordination number in clusters is given. In order to well describe the transition between the first hydration sphere and the second one we show that an autocoherent treatment of ...
The PM3 quantum-mechanical method has been used to study large water clusters ranging from 8 to 42 w...
F. Wang and K. D. Jordan J. Chem. Phys.Author Institution: Department of Chemistry, The Ohio State U...
F. Wang and K. D. Jordan J. Chem. Phys.Author Institution: Department of Chemistry, The Ohio State U...
We present a model potential for studying Mq+(H2O)n=1,9 clusters where M stands for either Na+, Cs+,...
We present a model potential for studying Mq+(H2O)n=1,9 clusters where M stands for either Na+, Cs+,...
Polarization and charge-transfer contributions have been shown to be nonnegligible in the binding en...
Polarization and charge-transfer contributions have been shown to be nonnegligible in the binding en...
Polarization and charge-transfer contributions have been shown to be nonnegligible in the binding en...
We present here a model potential study of the microsolvation of alkali cations M+ (M = Na, K, Rb, C...
We present here a model potential study of the microsolvation of alkali cations M+ (M = Na, K, Rb, C...
We present here a model potential study of the microsolvation of alkali cations M+ (M = Na, K, Rb, C...
The role of non-additive interactions in ionic clusters is studied on the example of the system H3O+...
We evaluate the ability of selected classical molecular models to describe the thermodynamic and str...
In the present paper, we use statistical mechanics to probe into the changes induced by cations (Al3...
Ab initio and DFT computations were carried out on four distinct hydrogen-bonded arrangements of wat...
The PM3 quantum-mechanical method has been used to study large water clusters ranging from 8 to 42 w...
F. Wang and K. D. Jordan J. Chem. Phys.Author Institution: Department of Chemistry, The Ohio State U...
F. Wang and K. D. Jordan J. Chem. Phys.Author Institution: Department of Chemistry, The Ohio State U...
We present a model potential for studying Mq+(H2O)n=1,9 clusters where M stands for either Na+, Cs+,...
We present a model potential for studying Mq+(H2O)n=1,9 clusters where M stands for either Na+, Cs+,...
Polarization and charge-transfer contributions have been shown to be nonnegligible in the binding en...
Polarization and charge-transfer contributions have been shown to be nonnegligible in the binding en...
Polarization and charge-transfer contributions have been shown to be nonnegligible in the binding en...
We present here a model potential study of the microsolvation of alkali cations M+ (M = Na, K, Rb, C...
We present here a model potential study of the microsolvation of alkali cations M+ (M = Na, K, Rb, C...
We present here a model potential study of the microsolvation of alkali cations M+ (M = Na, K, Rb, C...
The role of non-additive interactions in ionic clusters is studied on the example of the system H3O+...
We evaluate the ability of selected classical molecular models to describe the thermodynamic and str...
In the present paper, we use statistical mechanics to probe into the changes induced by cations (Al3...
Ab initio and DFT computations were carried out on four distinct hydrogen-bonded arrangements of wat...
The PM3 quantum-mechanical method has been used to study large water clusters ranging from 8 to 42 w...
F. Wang and K. D. Jordan J. Chem. Phys.Author Institution: Department of Chemistry, The Ohio State U...
F. Wang and K. D. Jordan J. Chem. Phys.Author Institution: Department of Chemistry, The Ohio State U...