首页> 外文期刊>The Journal of Chemical Physics >Quantum dynamics and spectroscopy of dihalogens in solid matrices. II. Theoretical aspects and G-MCTDH simulations of time-resolved coherent Raman spectra of Schrodinger cat states of the embedded I2Kr18 cluster
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Quantum dynamics and spectroscopy of dihalogens in solid matrices. II. Theoretical aspects and G-MCTDH simulations of time-resolved coherent Raman spectra of Schrodinger cat states of the embedded I2Kr18 cluster

机译:固体基质中二卤素的量子动态和光谱学。 II。 嵌入式I2KR18集群的Schrodinger Cat状态时间分辨相干拉曼谱的理论方面和G-MCTDH模拟

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This study presents quantum dynamical simulations, using the Gaussian-based multiconfigurational time-dependent Hartree (G-MCTDH) method, of time-resolved coherent Raman four-wave-mixing spectroscopic experiments for the iodine molecule embedded in a cryogenic crystal krypton matrix [D. Picconi et al., J. Chem. Phys. 150, 064111 (2019)]. These experiments monitor the time-evolving vibrational coherence between two wave packets created in a quantum superposition (i.e., a "Schrodinger cat state") by a pair of pump pulses which induce electronic B (3)Pi(u)(0(+)) - X (1)Sigma(+)(g) transitions. A theoretical description of the spectroscopic measurement is developed, which elucidates the connection between the nonlinear signals and the wave packet coherence. The analysis provides an effective means to simulate the spectra for several different optical conditions with a minimum number of quantum dynamical propagations. The G-MCTDH method is used to calculate and interpret the time-resolved coherent Raman spectra of two selected initial superpositions for a I2Kr18 cluster embedded in a frozen Kr cage. The time- and frequency-dependent signals carry information about the molecular mechanisms of dissipation and decoherence, which involve vibrational energy transfer to the stretching mode of the four "belt" Kr atoms. The details of these processes and the number of active solvent modes depend in a non-trivial way on the specific initial superposition.
机译:本研究提出了量子动态模拟,使用基于高斯的多组件时间依赖性Hartree(G-MCTDH)方法,所述时间分离的相干拉曼四波混合光谱分谱实验,其嵌入低温晶体基质基质[D. 。 Picconi等人,J.Chem。物理。 150,064111(2019)]。这些实验监视在量子叠加(即“Schrodinger CAT状态”)中产生的两个波段之间的时间不断变化的振动相干性,通过诱导电子B(3)Pi(U)(0(+)的一对泵脉冲(0(+) )& x(1)Sigma(+)(g)过渡。显影光谱测量的理论描述,其阐明了非线性信号与波分组相干之间的连接。该分析提供了一种有效的方法,用于模拟几种不同光学条件的光谱,其中具有最小数量的量子动态传播。 G-MCTDH方法用于计算和解释用于嵌入冷冻KR笼中的I2KR18簇的两个所选择的初始叠加的时间分辨相干拉曼光谱。时间和频率相关信号携带有关耗散和脱干的分子机制的信息,这涉及振动能量转移到四个“带”KR原子的拉伸模式。这些过程的细节和有源溶剂模式的数量在特定的初始叠加上以非平凡的方式取决于非普通方式。

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