Noid W G, Loring Roger F
Department of Chemistry and Chemical Biology, Baker Laboratory, Cornell University, Ithaca, New York 14853, USA.
J Chem Phys. 2004 Oct 15;121(15):7057-69. doi: 10.1063/1.1792211.
Observables in coherent, multiple-pulse infrared spectroscopy may be computed from a vibrational nonlinear response function. This response function is conventionally calculated quantum-mechanically, but the challenges in applying quantum mechanics to large, anharmonic systems motivate the examination of classical mechanical vibrational nonlinear response functions. We present an approximate formulation of the classical mechanical third-order vibrational response function for an anharmonic solute oscillator interacting with a harmonic solvent, which establishes a clear connection between classical and quantum mechanical treatments. This formalism permits the identification of the classical mechanical analog of the pure dephasing of a quantum mechanical degree of freedom, and suggests the construction of classical mechanical analogs of the double-sided Feynman diagrams of quantum mechanics, which are widely applied to nonlinear spectroscopy. Application of a rotating wave approximation permits the analytic extraction of signals obeying particular spatial phase matching conditions from a classical-mechanical response function. Calculations of the third-order response function for an anharmonic oscillator coupled to a harmonic solvent are compared to numerically correct classical mechanical results.
相干多脉冲红外光谱中的可观测量可以从振动非线性响应函数计算得出。该响应函数传统上是通过量子力学计算的,但将量子力学应用于大型非谐系统存在挑战,这促使人们研究经典力学振动非线性响应函数。我们给出了一个与谐波溶剂相互作用的非谐溶质振子的经典力学三阶振动响应函数的近似公式,该公式在经典力学和量子力学处理之间建立了明确的联系。这种形式主义允许识别量子力学自由度纯退相的经典力学类似物,并建议构建量子力学双边费曼图的经典力学类似物,这些图广泛应用于非线性光谱学。旋转波近似的应用允许从经典力学响应函数中解析提取符合特定空间相位匹配条件的信号。将耦合到谐波溶剂的非谐振子的三阶响应函数的计算结果与数值正确的经典力学结果进行了比较。