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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 >Jet cooled NO_2 intra cavity laser absorption spectroscopy (ICLAS) between 11200 and 16150 cm~(-1)
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Jet cooled NO_2 intra cavity laser absorption spectroscopy (ICLAS) between 11200 and 16150 cm~(-1)

机译:射流冷却的NO_2腔内激光吸收光谱(ICLAS)在11200和16150 cm〜(-1)之间

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We have combined the high sensitivity of the ICLAS technique with the rotational cooling effect of a slit jet expansion in order to observe and to understand the visible and near infrared NO2 spectrum. By this way, an equivalent absorption pathlength of several kilometers through rotationally cooled molecules has been achieved. Due to the vibronic interaction between the two lowest electronic states, 2A1 and ? 2B2, this spectrum is vibronically dense and complex. Moreover, the dense room temperature rotational structure is perturbed by additional rovibronic interactions. In contrast, the rotational analysis of our jet cooled spectrum is straightforward. The NO2 absorption spectrum is vanishing to the IR but, owing to the high sensitivity of the ICLAS technique, we have been able to record the NO2 spectrum down to 11200 cm?1 with a new Ti:sapphire ICLAS spectrometer. As a result 249 2B2 vibronic bands have been observed (175 cold bands and 74 hot bands) in the 11200–16150 cm?1 energy range. Due to the cooling effect of the slit jet we have reduced the rotational temperature down to about 12 K and at this temperature the K = 0 subbands are dominant. Consequently, we have analysed only the K = 0 manifold for N 7 of each vibronic band. The dynamical range of the band intensities is about one thousand. Due to the strong vibronic interaction between the 2A1 and ? 2B2 electronic states, we observed not only the a1 vibrational levels of the ? 2B2 state but also the b2 vibrational levels of the 2A1 state interacting with the previous ones. By comparison with the calculated density of states, we conclude that we have observed about 65% of the total number of 2B2 vibronic levels located in the studied range. However, there are more missing levels in the IR because of the weakness of the spectrum in this range. The correlation properties of this set of vibronic levels have been analysed calculating the power spectrum of the absorption stick spectrum which displays periodic motions: the dominant period, at 714 ± 20 cm~(-1), corresponds to the bending motion of the ? 2B2 state. The other observed periods remain unassigned. In contrast the next neighbor spacing distribution (NNSD) shows a strong level repulsion, i.e. a manifestation of quantum chaos. These two observations, apparently contradictory, can be rationalized as follows: the short time dynamics, for t < 10~(-12) s, is "regular" while for longer times the dynamics becomes "chaotic". We suggest that this behavior may be observed directly with a pump and probe fs laser experiment.
机译:我们将ICLAS技术的高灵敏度与狭缝喷嘴扩展的旋转冷却效果结合在一起,以便观察和了解可见光和近红外NO2光谱。通过这种方式,已经实现了通过旋转冷却的分子的几千米的等效吸收路径长度。由于两个最低电子态2A1和2之间的振动相互作用。如图2B2所示,该光谱在玻璃上稠密且复杂。此外,致密的室温旋转结构受到附加的电子振动相互作用的干扰。相反,我们的射流冷却光谱的旋转分析非常简单。 NO2吸收光谱对IR消失了,但是由于ICLAS技术的高灵敏度,我们已经能够使用新型Ti:蓝宝石ICLAS光谱仪记录低至11200 cm?1的NO2光谱。结果,在11200-16150 cm?1的能量范围内观察到249 2B2振动带(175个冷带和74个热带)。由于狭缝射流的冷却作用,我们已将旋转温度降低到大约12 K,在此温度下K = 0的子带占主导地位。因此,我们仅分析了每个振动带的N 7的K = 0流形。带强度的动态范围约为一千。由于2A1和?之间的强烈的振动相互作用。在2B2的电子状态下,我们不仅观察到了α1的振动水平。 2B2状态以及2A1状态的b2振动能级与先前的相互作用。通过与计算出的状态密度进行比较,我们得出的结论是,我们已经观察到位于研究范围内的2B2振动子总数的约65%。但是,由于该范围内的光谱较弱,因此IR中的丢失水平更高。分析了这组振动水平的相关特性,计算出显示周期性运动的吸收棒谱的功率谱:在714±20 cm〜(-1)处的主导周期对应于?的弯曲运动。 2B2状态。其他观察期未分配。相反,下一相邻间隔分布(NNSD)显示出强的水平排斥力,即量子混沌的表现。这两个明显矛盾的观察结果可以合理地解释为:对于t <10〜(-12)s的短时间动力学是“规则的”,而对于较长时间的动力学则是“混乱的”。我们建议可以通过泵浦和探针fs激光实验直接观察到这种行为。

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