(MgCs)+分子离子的电子结构、光谱学、冷离子-原子弹性碰撞特性和光缔合形成预测

IF 1.7 Q3 PHYSICS, ATOMIC, MOLECULAR & CHEMICAL Atoms Pub Date : 2023-09-15 DOI:10.3390/atoms11090121
Mohamed Farjallah, Dibyendu Sardar, Bimalendu Deb, Hamid Berriche
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引用次数: 0

摘要

在本文中,我们广泛地研究了(MgCs)+分子离子的电子结构、相互作用和动力学。研究了低温和超冷量子化学中具有重要意义的碱性原子与低能阳离子碱土之间的交换。我们使用了一种基于Mg2+和Cs+核、大高斯基集和全价态相互作用的非经验伪势形式化的从头算方法。在这种情况下,(MgCs)+阳离子被视为一个有效的双电子系统。确定了1,3Σ+对称的基态和前20个激发态的绝热势能曲线及其光谱常数。此外,我们确定了1,3Σ+对称电子态之间的避免交叉。这些交叉与两个离子极限Mg/Cs+和Mg+/Cs之间的电荷转移过程有关。因此,给出并分析了振动级间距、跃迁矩和永久偶极矩。利用生成的势能数据,计算了大范围能量下的基态散射波函数和弹性截面。此外,我们预测了在离子-原子冷碰撞的辅助下,通过受激拉曼过程在基态电子势能下形成平移和旋转冷分子离子(MgCs)+。在低能极限(<1 mK),弹性散射截面表现为Wigner定律阈值行为,而在高能极限,弹性散射截面表现为能量E go的函数,为E−1/3。本文对光结合光谱法形成冷(MgCs)+分子离子的可能性进行了定性讨论。
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Electronic Structure, Spectroscopy, Cold Ion–Atom Elastic Collision Properties, and Photoassociation Formation Prediction of the (MgCs)+ Molecular Ion
In this paper, we extensively study the electronic structure, interactions, and dynamics of the (MgCs)+ molecular ion. The exchanges between the alkaline atom and the low-energy cationic alkaline earths, which are important in the field of cold and ultracold quantum chemistry, are studied. We use an ab initio approach based on the formalism of non-empirical pseudo-potential for Mg2+ and Cs+ cores, large Gaussian basis sets, and full-valence configuration interaction. In this context, the (MgCs)+ cation is treated as an effective two-electron system. Adiabatic potential energy curves and their spectroscopic constants for the ground and the first 20 excited states of 1,3Σ+ symmetries are determined. Furthermore, we identify the avoided crossings between the electronic states of 1,3Σ+ symmetries. These crossings are related to the charge transfer process between the two ionic limits, Mg/Cs+ and Mg+/Cs. Therefore, vibrational-level spacings and the transition and permanent dipole moments are presented and analyzed. Using the produced potential energy data, the ground-state scattering wave functions and elastic cross-sections are calculated for a wide range of energies. In addition, we predict the formation of a translationally and rotationally cold molecular ion (MgCs)+ in the ground-state electronic potential energy through a stimulated Raman-type process aided by ion–atom cold collision. In the low-energy limit (<1 mK), elastic scattering cross-sections exhibit Wigner law threshold behavior, while in the high-energy limit, the cross-sections act as a function of energy E go as E−1/3. A qualitative discussion about the possibilities of forming cold (MgCs)+ molecular ions by photoassociative spectroscopy is presented.
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来源期刊
Atoms
Atoms Physics and Astronomy-Nuclear and High Energy Physics
CiteScore
2.70
自引率
22.20%
发文量
128
审稿时长
8 weeks
期刊介绍: Atoms (ISSN 2218-2004) is an international and cross-disciplinary scholarly journal of scientific studies related to all aspects of the atom. It publishes reviews, regular research papers, and communications; there is no restriction on the length of the papers. Our aim is to encourage scientists to publish their experimental and theoretical research in as much detail as possible. Full experimental and/or methodical details must be provided for research articles. There are, in addition, unique features of this journal: -manuscripts regarding research proposals and research ideas will be particularly welcomed. -computed data, program listings, and files regarding the full details of the experimental procedure, if unable to be published in a normal way, can be deposited as supplementary material. Scopes: -experimental and theoretical atomic, molecular, and nuclear physics, chemical physics -the study of atoms, molecules, nuclei and their interactions and constituents (protons, neutrons, and electrons) -quantum theory, applications and foundations -microparticles, clusters -exotic systems (muons, quarks, anti-matter) -atomic, molecular, and nuclear spectroscopy and collisions -nuclear energy (fusion and fission), radioactive decay -nuclear magnetic resonance (NMR) and electron spin resonance (ESR), hyperfine interactions -orbitals, valence and bonding behavior -atomic and molecular properties (energy levels, radiative properties, magnetic moments, collisional data) and photon interactions
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