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散射计算中相互作用势生成的基准:C(4)(X(3)Σ)与 He 之间的旋转非弹性碰撞的应用。

Benchmarks for the generation of interaction potentials for scattering calculations: applications to rotationally inelastic collisions of C(4) (X(3)Σ) with He.

机构信息

LOMC-FRE 3102-CNRS, Université du Havre 25 rue Philippe Lebon, BP 540, 76058, Le Havre, France.

出版信息

Phys Chem Chem Phys. 2010 Dec 28;12(48):15672-80. doi: 10.1039/c004945j. Epub 2010 Aug 20.

Abstract

We present an application of recently developed, explicitly correlated, partially spin-restricted coupled-cluster RCCSD(T)-F12x (x = A/B) methods [G. Knizia, T. B. Adler, and H.-J. Werner, J. Chem. Phys., 2009, 130, 054104] for the generation of multi-dimensional potential energy surfaces (PESs) for scattering calculations. We test the method on the O(2)-He van der Waals model system by a comparison with standard orbital-based coupled-cluster techniques, employing correlation-consistent atomic basis sets (aug-cc-pVXZ, X = T, Q, 5, 6) and a complete basis set. From this comparison, it is obvious that the RCCSD(T)-F12/aug-cc-pVTZ approach is accurate enough for the description of short and long-range interactions with low computational effort. We apply this new method in studies of the interaction of the carbon-rich interstellar species C(4)(X(3)Σ) with atomic He. This PES is subsequently used in quantum close-coupling scattering calculations. The collisional excitation cross-sections of the fine-structure levels of C(4) by He are calculated at low collisional energies. The thermal dependence of rate coefficients is calculated up to 50 K. The propensity rules between fine-structure levels are studied, and it is shown that F-conserving cross sections are much larger, especially for high-N rotational levels rather than F-changing cross sections, as expected from theoretical considerations. This is the first report on the collisional rate coefficients for this system and may have important implications for the astrophysical detection of C4 and modeling of carbon-rich media.

摘要

我们提出了最近开发的、显式相关的、部分自旋限制的耦合簇 RCCSD(T)-F12x(x = A/B)方法[G. Knizia、T. B. Adler 和 H.-J. Werner,J. Chem. Phys.,2009,130,054104]在散射计算中生成多维势能面(PES)的应用。我们通过与标准基于轨道的耦合簇技术进行比较,在 O(2)-He 范德华模型系统上测试了该方法,使用相关一致的原子基组(aug-cc-pVXZ,X = T、Q、5、6)和完全基组。从这个比较中,可以明显看出 RCCSD(T)-F12/aug-cc-pVTZ 方法对于描述短程和长程相互作用具有足够的准确性,并且计算工作量低。我们将这种新方法应用于富含碳的星际物质 C(4)(X(3)Σ)与原子 He 相互作用的研究中。这个 PES 随后被用于量子紧密耦合散射计算。在低碰撞能下计算了 He 对 C(4)精细结构能级的碰撞激发截面。计算了直至 50 K 的速率系数的热依赖性。研究了精细结构能级之间的选择定则,并表明 F 守恒截面大得多,尤其是对于高-N 转动能级,而不是 F 变化截面,这与理论考虑一致。这是该系统碰撞速率系数的首次报道,可能对 C4 的天体物理检测和富含碳介质的建模具有重要意义。

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