首页> 外文期刊>Chemical Physics: A Journal Devoted to Experimental and Theoretical Research Involving Problems of Both a Chemical and Physical Nature >Spectral density of medium strength H-bonds. Direct damping and intrinsic anharmonicity of the slow mode. Beyond adiabatic approximation
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Spectral density of medium strength H-bonds. Direct damping and intrinsic anharmonicity of the slow mode. Beyond adiabatic approximation

机译:中强度氢键的光谱密度。慢速模式的直接阻尼和固有非谐性。绝热逼近

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The present theory is a new step in our attempt to obtain a flexible tool susceptible to be used by experimentalists working in the realm of the spectra of the infrared v_(X-H…Y) mode of weak and medium strength hydrogen bonds: the spectral density is studied within the linear response theory by Fourier transform of the autocorrelation function of the transition dipole moment of the fast mode. The strong anharmonic coupling theory is used through second-order expansion in the slow-mode coordinate Q of the angular frequency and the equilibrium position of the fast mode. The theory is working beyond the adiabatic approximation. It takes into account the intrinsic anharmonicity of the low frequency mode through Morse potential, and assumes a direct damping of the fast mode. At last, indirect damping, Fermi resonances and Davydov coupling are ignored. When the Morse potential is expanded up to the harmonic approximation, the theoretical spectral density reduces [O. Henri-Rousseau, P. Blaise, Chem. Phys. 250 (1999) 249]. The theory reproduce not only the experimental features obtained in this previous paper but also the increase in magnitude of the first moment with temperature.
机译:本理论是我们尝试获得一种灵活的工具的新步骤,该工具易于在弱和中等强度氢键的红外v_(XH…Y)模的光谱领域中工作的实验学家使用:光谱密度为在线性响应理论中,通过快速模式跃迁偶极矩的自相关函数的傅立叶变换对线性方程进行了研究。通过在角频率的慢模式坐标Q和快模式的平衡位置中进行二阶展开来使用强非谐波耦合理论。该理论的工作超出了绝热近似。它考虑了通过莫尔斯电势的低频模式的固有非谐性,并假定了快速模式的直接阻尼。最后,间接阻尼,费米共振和达维多夫耦合被忽略。当莫尔斯电势扩展到谐波近似值时,理论频谱密度降低[O。 Henri-Rousseau,P。Blaise,化学。物理250(1999)249]。该理论不仅重现了前一篇论文中获得的实验特征,而且还再现了第一力矩随温度的增加。

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