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Ultrafast photodynamics of furan

机译:呋喃的超快光动力学

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Ultrafast photodynamics of furan has been studied by time-resolved photoelectron imaging (TRPEI) spectroscopy with an unprecedented time resolution of 22 fs. The simulation of the time-dependent photoelectron kinetic energy distribution (PKED) has been performed with ab initio nonadiabatic dynamics on the fly in the frame of time-dependent density functional theory. Based on the agreement between experimental and theoretical time-dependent photoelectron signal intensity as well as on PKED, precise time scales of ultrafast internal conversion from S2 over S1 to the ground state S 0 of furan have been revealed for the first time. Upon initial excitation of the S2 state which has -* character, a nonadiabatic transition to the S1 state occurs within 10 fs. Subsequent dynamics invokes the excitation of the C-O stretching and C-O-C out of plane vibrations which lead to the internal conversion to the ground state after 60 fs. Thus, we demonstrate that the TRPEI combined with high level nonadiabatic dynamics calculations provide fundamental insight into ultrafast photodynamics of chemically and biologically relevant chromophores.
机译:呋喃的超快光动力学已通过时间分辨光电子成像(TRPEI)光谱进行了研究,其空前的时间分辨率为22 fs。时间依赖性光电子动能分布(PKED)的仿真是在时间依赖性密度泛函理论的框架内,从头算起非绝热动力学进行的。基于实验和理论上随时间变化的光电子信号强度之间的一致性以及基于PKED,首次揭示了从S2上的S2到呋喃基态S 0的超快内部转换的精确时间尺度。最初激发具有-*特性的S2状态时,会在10 fs内发生非绝热过渡到S1状态。随后的动力学引起C-O拉伸和C-O-C平面外振动的激发,这些振动导致60 fs后内部转换为基态。因此,我们证明TRPEI与高水平非绝热动力学计算相结合,为化学和生物学相关生色团的超快光动力学提供了基本的见识。

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