H2对NS+的旋转激发:一个新的全局势能面和速率系数。

C. Bop, Y. Kalugina, F. Lique
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引用次数: 1

摘要

由于缺乏具体的碰撞数据,我们用CS的碰撞速率系数来确定冷致密星际云中NS+的丰度。为了更好地理解星际介质中硫的化学性质,需要使用实际的NS+碰撞速率系数进行进一步的丰度建模。为此,我们利用单、双、非迭代三重激发的显式相关耦合簇方法,结合增强相关一致极化价三重zeta基集,计算了NS+-H2范德华配合物的第一个全4D势能面。该配合物平面构型的势能面最小值为848.24 cm-1。用多极矩描述的远程相互作用能对H2的取向敏感,直至径向距离为~ 50 a0。从这个新的相互作用势出发,我们利用量子力学紧密耦合方法推导了NS+在15个低空旋转能级上与邻位和对位h2碰撞引起的激发截面。通过对这些数据进行热平均,我们确定了温度达到50 K时的向下速率系数。通过与之前的NS+-H2数据进行比较,我们证明了降维方法不适合该系统。此外,我们发现CS碰撞数据低估了我们的结果高达一个数量级。这些差异清楚地表明,从观测光谱中获取的冷稠密云中的NS+丰度必须使用这些新的碰撞速率系数来重新评估。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Rotational excitation of NS+ by H2 revisited: A new global potential energy surface and rate coefficients.
Due to the lack of specific collisional data, the abundance of NS+ in cold dense interstellar clouds was determined using collisional rate coefficients of CS as a substitute. To better understand the chemistry of sulfur in the interstellar medium, further abundance modeling using the actual NS+ collisional rate coefficients is needed. For this purpose, we have computed the first full 4D potential energy surface of the NS+-H2 van der Waals complex using the explicitly correlated coupled cluster approach with single, double, and non-iterative triple excitation in conjunction with the augmented-correlation consistent-polarized valence triple zeta basis set. The potential energy surface exhibits a global minimum of 848.24 cm-1 for a planar configuration of the complex. The long-range interaction energy, described using multipolar moments, is sensitive to the orientation of H2 up to radial distances of ∼50 a0. From this new interaction potential, we derived excitation cross sections, induced by collision with ortho- and para-H2, for the 15 low-lying rotational levels of NS+ using the quantum mechanical close-coupling approach. By thermally averaging these data, we determined downward rate coefficients for temperatures up to 50 K. By comparing them with the previous NS+-H2 data, we demonstrated that reduced dimensional approaches are not suited for this system. In addition, we found that the CS collisional data underestimate our results by up to an order of magnitude. The differences clearly indicate that the abundance of NS+, in cold dense clouds retrieved from observational spectra, must be reassessed using these new collisional rate coefficients.
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