Full classical molecular dynamics (MD) simulations of two-dimensional (2D) infrared-Raman and 2D Raman spectroscopies of liquid water were carried out to elucidate a mode-mode coupling mechanism using a polarizable water model for intermolecular and intramolecular vibrational spectroscopy (POLI2VS). This model is capable of describing both infrared and Raman spectra. Second-order response functions, which consist of one molecular polarizability and two molecular dipole moments for 2D IR-Raman and three molecular polarizabilities for 2D Raman spectroscopies, were calculated using an equilibrium-non-equilibrium hybrid MD approach. The obtained signals were analyzed using a multi-mode Brownian oscillator (BO) model with nonlinear system-bath i...
A quantitative characterization of intermolecular and intramolecular couplings that modulate the ...
Compared with other molecular liquids, water is highly structured because of its ability to form up ...
Author Institution: Department of Chemistry, Temple University; Office of Science and Technology, th...
D. Kraemer, M. L. Cowan, A. Paarmann, N. Huse, E. T. J. Nibbering, T. Elsaesser, and R. J. Dwayne Mi...
Vibrational spectroscopy is a powerful technique to probe the structure and dynamics of water. Howev...
Frequency-domain two-dimensional (2D) Raman signals, which are equivalent to coherent two-dimensiona...
The combination of vibrational spectroscopy and molecular dynamics simulations provides a powerful t...
The combination of vibrational spectroscopy and molecular dynamics simulations provides a powerful t...
We report the first <i>ab initio</i> simulations of the Raman spectra of liquid water, obtained by c...
Water’s extended hydrogen-bond network results in rich and complex dynamics on the sub-picosecond ti...
The structure and structural dynamics of hydrogen bonded liquids were studied experimentally and the...
The structure and structural dynamics of hydrogen bonded liquids were studied experimentally and the...
Water’s extended hydrogen-bond network results in rich and complex dynamics on the sub-picosecond ti...
<p>Understanding the Raman spectroscopy at the atomistic level is important for the elucidation of d...
A quantitative characterization of intermolecular and intramolecular couplings that modulate the OH-...
A quantitative characterization of intermolecular and intramolecular couplings that modulate the ...
Compared with other molecular liquids, water is highly structured because of its ability to form up ...
Author Institution: Department of Chemistry, Temple University; Office of Science and Technology, th...
D. Kraemer, M. L. Cowan, A. Paarmann, N. Huse, E. T. J. Nibbering, T. Elsaesser, and R. J. Dwayne Mi...
Vibrational spectroscopy is a powerful technique to probe the structure and dynamics of water. Howev...
Frequency-domain two-dimensional (2D) Raman signals, which are equivalent to coherent two-dimensiona...
The combination of vibrational spectroscopy and molecular dynamics simulations provides a powerful t...
The combination of vibrational spectroscopy and molecular dynamics simulations provides a powerful t...
We report the first <i>ab initio</i> simulations of the Raman spectra of liquid water, obtained by c...
Water’s extended hydrogen-bond network results in rich and complex dynamics on the sub-picosecond ti...
The structure and structural dynamics of hydrogen bonded liquids were studied experimentally and the...
The structure and structural dynamics of hydrogen bonded liquids were studied experimentally and the...
Water’s extended hydrogen-bond network results in rich and complex dynamics on the sub-picosecond ti...
<p>Understanding the Raman spectroscopy at the atomistic level is important for the elucidation of d...
A quantitative characterization of intermolecular and intramolecular couplings that modulate the OH-...
A quantitative characterization of intermolecular and intramolecular couplings that modulate the ...
Compared with other molecular liquids, water is highly structured because of its ability to form up ...
Author Institution: Department of Chemistry, Temple University; Office of Science and Technology, th...