Non-linear two-dimensional infrared spectroscopy (2DIR) is most commonly simulated within the framework of the exciton method. The key parameters for these calculations include the frequency of the oscillators within their molecular environments and coupling constants that describe the strength of coupling between the oscillators. It is shown that these quantities can be obtained directly from harmonic frequency calculations by exploiting a procedure that localizes the normal modes. This approach is demonstrated using the amide I modes of polypeptides. For linear and cyclic diamides, and the hexapeptide Z-Aib L-Leu-(Aib)2-Gly- Aib-OtBu, the computed parameters are compared with those from existing schemes, and the resulting 2DIR spectra are...
Two dimensional infrared (2D IR) spectroscopy has been successfully adapted and applied to the coupl...
Infrared frequency region of 2000-2600 cm(-1) (i.e., ca. 4-5 mu m in wavelength) is a well-known ope...
In this paper, we present a novel benchmarking method for validating the modelling of vibrational sp...
Non-linear two-dimensional infrared spectroscopy (2DIR) is most commonly simulated within the framew...
Non-linear two-dimensional infrared spectroscopy (2DIR) is most commonly simulated within the framew...
Two-dimensional infrared (2D-IR) spectroscopy is a powerful experimental method for probing the stru...
The ability to compute from first principles the infrared spectrum of a protein in solution phase re...
Population transfer between vibrational eigenstates is important for many phenomena in chemistry. In...
Proteins play an important role in the function of biological systems. Developing a thorough underst...
The research presented in this thesis advances the applicability of two dimensional infrared spectro...
We have investigated the sensitivity of two-dimensional infrared (2D IR) spectroscopy to peptide hel...
The nonlinear optical response of peptide molecules to femtosecond infrared pulse sequences contains...
Two-dimensional infrared spectroscopy is capable of following the transfer of vibrational energy bet...
A brief description of the signals in multidimensional infrared spectroscopy is given with emphasis ...
Two dimensional infrared (2D IR) spectroscopy has been successfully adapted and applied to the coupl...
Infrared frequency region of 2000-2600 cm(-1) (i.e., ca. 4-5 mu m in wavelength) is a well-known ope...
In this paper, we present a novel benchmarking method for validating the modelling of vibrational sp...
Non-linear two-dimensional infrared spectroscopy (2DIR) is most commonly simulated within the framew...
Non-linear two-dimensional infrared spectroscopy (2DIR) is most commonly simulated within the framew...
Two-dimensional infrared (2D-IR) spectroscopy is a powerful experimental method for probing the stru...
The ability to compute from first principles the infrared spectrum of a protein in solution phase re...
Population transfer between vibrational eigenstates is important for many phenomena in chemistry. In...
Proteins play an important role in the function of biological systems. Developing a thorough underst...
The research presented in this thesis advances the applicability of two dimensional infrared spectro...
We have investigated the sensitivity of two-dimensional infrared (2D IR) spectroscopy to peptide hel...
The nonlinear optical response of peptide molecules to femtosecond infrared pulse sequences contains...
Two-dimensional infrared spectroscopy is capable of following the transfer of vibrational energy bet...
A brief description of the signals in multidimensional infrared spectroscopy is given with emphasis ...
Two dimensional infrared (2D IR) spectroscopy has been successfully adapted and applied to the coupl...
Infrared frequency region of 2000-2600 cm(-1) (i.e., ca. 4-5 mu m in wavelength) is a well-known ope...
In this paper, we present a novel benchmarking method for validating the modelling of vibrational sp...