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Simulation of vibrational energy transfer in two-dimensional infrared spectroscopy of amide I and amide II modes in solution

机译:溶液中酰胺I和酰胺II模式的二维红外光谱中振动能量转移的模拟

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摘要

Population transfer between vibrational eigenstates is important for many phenomena in chemistry. In solution, this transfer is induced by fluctuations in molecular conformation as well as in the surrounding solvent. We develop a joint electrostatic density functional theory map that allows us to connect the mixing of and thereby the relaxation between the amide I and amide II modes of the peptide building block N-methyl acetamide. This map enables us to extract a fluctuating vibrational Hamiltonian from molecular dynamics trajectories. The linear absorption spectrum, population transfer, and two-dimensional infrared spectra are then obtained from this Hamiltonian by numerical integration of the Schrodinger equation. We show that the amide I/amide II cross peaks in two-dimensional infrared spectra in principle allow one to follow the vibrational population transfer between these two modes. Our simulations of N-methyl acetamide in heavy water predict an efficient relaxation between the two modes with a time scale of 790 fs. This accounts for most of the relaxation of the amide I band in peptides, which has been observed to take place on a time scale of 450 fs in N-methyl acetamide. We therefore conclude that in polypeptides, energy transfer to the amide II mode offers the main relaxation channel for the amide I vibration. (C) 2008 American Institute of Physics.
机译:振动本征态之间的种群转移对于化学中的许多现象很重要。在溶液中,这种转移是由分子构象以及周围溶剂的波动引起的。我们开发了一个联合静电密度泛函理论图,它使我们能够连接肽构建单元N-甲基乙酰胺的酰胺I和酰胺II模式的混合,从而实现它们之间的松弛。该图使我们能够从分子动力学轨迹中提取波动的振动哈密顿量。然后,通过对该薛定inger方程进行数值积分,从该哈密顿量获得线性吸收光谱,种群转移和二维红外光谱。我们显示,二维红外光谱中的酰胺I /酰胺II交叉峰原则上允许一个跟随这两种模式之间的振动种群转移。我们在重水中的N-甲基乙酰胺模拟表明,两种模式之间的有效弛豫时间为790 fs。这解释了肽中酰胺I条带的大部分松弛,已观察到在N-甲基乙酰胺中发生在450 fs的时间范围内。因此,我们得出结论,在多肽中,能量转移至酰胺II模式为酰胺I振动提供了主要的弛豫通道。 (C)2008美国物理研究所。

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