Quantum-classical description of the amide I vibrational spectrum of trialanine.
Roman D Gorbunov, Phuong H Nguyen, Maja Kobus, Gerhard Stock
Index: J. Chem. Phys. 126(5) , 054509, (2007)
Full Text: HTML
Abstract
A quantum-classical description of the amide I vibrational spectrum of trialanine cation in D2O is given that combines (i) a classical molecular dynamics simulation of the conformational distribution of the system, (ii) comprehensive density functional theory calculations of the conformation-dependent and solvent-induced frequency fluctuations, and (iii) a semiclassical description of the vibrational line shapes which includes nonadiabatic transitions between vibrational eigenstates. Various assumptions that are usually employed in the calculation of condensed-phase vibrational spectra are tested, including the adiabatic, the Franck-Condon, and the second-order cumulant approximations, respectively. All three parts of the theoretical formulation are shown to have a significant impact on the simulated spectrum, suggesting that the interpretation of peptide amide I spectra may require substantial theoretical support.
Related Compounds
Related Articles:
2012-07-14
[J. Chem. Phys. 137(2) , 024102, (2012)]
2007-09-01
[Eur. J. Pharm. Sci. 32(1) , 69-76, (2007)]
2007-10-28
[Phys. Chem. Chem. Phys. 9(40) , 5423-35, (2007)]
2010-01-21
[J. Phys. Chem. B 114(2) , 1204-12, (2010)]
2013-04-11
[J. Phys. Chem. B 117(14) , 3689-706, (2013)]