The molecular mechanisms in both vibrational relaxation and proton transfer (PT) associated with infrared (IR)-induced PT in a dilute hydrofluoric acid solution at ambient temperature are studied by molecular dynamics (MD) simulations with the multistate empirical valence bond model. To investigate the solvation dynamics, a collective solvent coordinate and its perpendicular bath modes are defined from the diabatic energy gap and their motions are examined by the generalized Langevin equation (GLE) formalism. The GLE analysis using the equilibrium MD simulation shows that the major solvent reorganizations in the PT are represented by the libration and hindered translation. In particular, the libration gives the stronger coupling to the solv...
Solvation dynamics in liquid water is addressed via nonequilibrium energy-transfer pathways activate...
The extent to which the ions affect the nearby water molecules will decide the structure-making or b...
Protons (H+) are the most abundant cations in chemical processes. Proton itself is a superacid and i...
Solvation dynamics in liquid water is addressed via nonequilibrium energy-transfer pathways activate...
A new, first-principles theory of vibrational energy relaxation (VER) of a solute normal mode infini...
We have performed the multistate empirical valence bond (MS-EVB) molecular dynamics simulations of a...
We introduce a nonequilibrium molecular dynamics simulation approach, based on the generalized Lange...
A rigorous theoretical treatment of vibrational energy relaxation in solution has been developed bas...
We introduce a nonequilibrium molecular dynamics simulation approach, based on the generalized Lange...
We introduce a nonequilibrium molecular dynamics simulation approach, based on the generalized Lange...
Vibrational energy relaxation of O-D stretch of HOD in liquid H2O at 300 K is studied with molecular...
For this thesis work, equilibrium (EMD) and non-equilibrium (NEMD) molecular dynamics simulations ha...
Several aspects of proton transfer in polar solvents are examined. The studies carried out can be di...
In this thesis the dynamics of water and hydrated protons in confinement has been studied using nonl...
International audienceThe Watson-Crick hydrogen bonded pair formed by deoxyguanosine and deoxycytidi...
Solvation dynamics in liquid water is addressed via nonequilibrium energy-transfer pathways activate...
The extent to which the ions affect the nearby water molecules will decide the structure-making or b...
Protons (H+) are the most abundant cations in chemical processes. Proton itself is a superacid and i...
Solvation dynamics in liquid water is addressed via nonequilibrium energy-transfer pathways activate...
A new, first-principles theory of vibrational energy relaxation (VER) of a solute normal mode infini...
We have performed the multistate empirical valence bond (MS-EVB) molecular dynamics simulations of a...
We introduce a nonequilibrium molecular dynamics simulation approach, based on the generalized Lange...
A rigorous theoretical treatment of vibrational energy relaxation in solution has been developed bas...
We introduce a nonequilibrium molecular dynamics simulation approach, based on the generalized Lange...
We introduce a nonequilibrium molecular dynamics simulation approach, based on the generalized Lange...
Vibrational energy relaxation of O-D stretch of HOD in liquid H2O at 300 K is studied with molecular...
For this thesis work, equilibrium (EMD) and non-equilibrium (NEMD) molecular dynamics simulations ha...
Several aspects of proton transfer in polar solvents are examined. The studies carried out can be di...
In this thesis the dynamics of water and hydrated protons in confinement has been studied using nonl...
International audienceThe Watson-Crick hydrogen bonded pair formed by deoxyguanosine and deoxycytidi...
Solvation dynamics in liquid water is addressed via nonequilibrium energy-transfer pathways activate...
The extent to which the ions affect the nearby water molecules will decide the structure-making or b...
Protons (H+) are the most abundant cations in chemical processes. Proton itself is a superacid and i...