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Relaxation processes at high levels of vibrational excitation of polyatomic molecules in the ground electronic state

机译:在地面电子状态下的高水平振动激发的放松过程

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By the spectral and kinetic characteristics of the luminescence of vapors of polyatomic molecules (anthracene, anthraquinone, fluorenone) initiated by selective JR multiphoton excitation (IR MPE) of molecules in the ground electronic state S0 the relaxation processes proceeding under vibrational excitation of molecules to energies exceeding the energies of the lower excited electronic states have been investigated. The changes in the spectral and kinetic characteristics with increasing CO{sub}2 laser energy density and vapor P{sub}v and foreign gas pressure P{sub}(FG) are analyzed. They are similar to the characteristics obtained for normal fluorescence of these molecules with changing vibrational energy E{sub}(vib) content. On the basis of experimental data and model calculations it has been concluded that at the laser radiation densities used in the case of IR MPE the molecules reach energies considerably exceeding the energies of the electronic levels. It is shown that a nonadiabatic connection between the electronic states leads to the population of mixed electronic states isoenergetic to the vibrational levels of the ground electronic state and to emission of delayed luminescence spectrally identical to the normal luminescence of these molecules. It has been found that when high vibrational levels are populated, new relaxation channels, such as reverse electron relaxation, emission from high vibrational levels of the ground electronic state, and multiquantum vibrational energy transfer at collisions leading to a rapid establishment of vibrational equilibrium become important.
机译:通过在地面电子状态S0中的分子中分子的选择性JR多选激发(IR MPE)引发的多元素分子(蒽,蒽醌,芴酮)的蒸气发光的光谱和动力学特性S0在振动激发分子上进行的弛豫过程进入能量已经研究了超过兴奋电子国家的能量。分析了CO {ul} 2激光能量密度和蒸汽P {u} V和异物压力P {SUB}(FG)的频谱和动力学特性的变化。它们类似于通过改变振动能量E {}(VIB)含量的这些分子的正常荧光而获得的特征。在实验数据和模型计算的基础上,已经得出结论,在IR MPE的IR MPE的情况下使用的激光辐射密度,分子达到能量显着超过电子电平的能量。结果表明,电子国家之间的非抗动性连接导致混合电子状态的群体对地面电子状态的振动水平以及与这些分子的正常发光的延迟发光的发射。已经发现,当填充高振动水平时,新的松弛通道,如逆向电子弛豫,从地面电子状态的高振动水平的排放,碰撞时的富有义安振动能量转移导致振动平衡的快速建立变得重要。

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