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首页> 外文期刊>Inorganic Chemistry: A Research Journal that Includes Bioinorganic, Catalytic, Organometallic, Solid-State, and Synthetic Chemistry and Reaction Dynamics >Accounting for the differences in the structures and relative energies of the highly homoatomic np(pi)-np(pi) (n = 3)-bonded S2I42+, the Se-I pi-bonded Se2I42+, and their higher-energy isomers by AIM, MO, NBO, and VB methodologies
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Accounting for the differences in the structures and relative energies of the highly homoatomic np(pi)-np(pi) (n = 3)-bonded S2I42+, the Se-I pi-bonded Se2I42+, and their higher-energy isomers by AIM, MO, NBO, and VB methodologies

机译:通过AIM解释高度同原子np(pi)-np(pi)(n> = 3)结合的S2I42 +,Se-I pi结合的Se2I42 +及其高能异构体的结构和相对能的差异,MO,NBO和VB方法论

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The bonding in the highly homoatomic np(pi)-np(pi) (n >= 3)-bonded S2I42+ (three sigma + two pi bonds), the Se-I pi-bonded Se2I42+ (four sigma + one pi bonds), and their higher-energy isomers have been studied using modern DFT and ab initio calculations and theoretical analysis methods: atoms in molecules (AIM), molecular orbital (MO), natural bond orbital (NBO), and valence bond (VB) analyses, giving their relative energies, theoretical bond orders, and atomic charges. The aim of this work was to seek theory-based answers to four main questions: (1) Are the previously proposed simple pi*-pi* bonding models valid for S2I42+ and Se2I42+? (2) What accounts for the difference in the structures of S2I42+ and Se2I42+? (3) Why are the classically bonded isolobal P2I4 and As2I4 structures not adopted? (4) Is the high experimentally observed S-S bond order supported by theoretical bond orders, and how does it relate to high bond orders between other heavier main group elements? The AIM analysis confirmed the high bond orders and established that the weak bonds observed in S2I42+ and Se2I42+ are real and the bonding in these cations is covalent in nature. The full MO analysis confirmed that S2I42+ contains three sigma and two pi bonds, that the positive charge is essentially equally distributed over all atoms, that the bonding between S-2 and two I-2(+) units in S2I42+ is best described by two mutually perpendicular 4c2e pi*-pi* bonds, and that in Se2I42+, two SeI2+ moieties are joined by a 6c2e pi*-pi* bond, both in agreement with previously suggested models. The VB treatment provided a complementary approach to MO analysis and provided insight how the formation of the weak bonds affects the other bonds. The NBO analysis and the calculated AIM charges showed that the minimization of the electrostatic repulsion between EI2+ units (E = S, Se) and the delocalization of the positive charge are the main factors that explain why the nonclassical structures are favored for S2I42+ and Se2I42+. The difference in the structures of S2I42+ and Se2I42+ is related to the high strength of the S-S pi bond compared to the weak S-I sigma bond and the additional stabilization from increased delocalization of positive charge in the structure of S2I42+ compared to the structure of Se2I42+. The investigation of the E2X42+ series (E = S, Se, Te; X = Cl, Br, I) revealed that only S2I42+ adopts the highly np(pi)-np(pi) (n >= 3)-bonded structure, while all other dications favor the pi-bonded Se2I42+ structure. Theoretical bond order calculations for S2I42+ confirm the previously presented experimentally based bond orders for S-S (2.1-2.3) and I-I (1.3-1.5) bonds. The S-S bond is determined to hae the highest reported S-S bond order in an isolated compound and has a bond order that is either similar to or slightly less than the Si-Si bond order in the proposed triply bonded [(Me3Si)(2)CH](2)(Pr-i)SiSi=SiSi(Pr-i)[CH(SiMe3)(2)](2) depending on the definition of bond orders used.
机译:在高度同原子np(pi)-np(pi)(n> = 3)键合的S2I42 +(三个sigma +两个pi键),Se-I pi键合的Se2I42 +(四个sigma +一个pi键)中的键合,使用现代DFT和从头算和理论分析方法研究了它们的高能异构体:分子中的原子(AIM),分子轨道(MO),自然键轨道(NBO)和价键(VB)分析,得出它们的相对能量,理论键序和原子电荷。这项工作的目的是为四个主要问题寻求基于理论的答案:(1)先前提出的简单pi * -pi *键合模型对S2I42 +和Se2I42 +是否有效? (2)是什么解释了S2I42 +和Se2I42 +的结构差异? (3)为什么不采用经典键合的等边P2I4和As2I4结构? (4)通过实验观察到的高S-S键序是否受理论键序的支持,它与其他较重的主族元素之间的高键序有何关系? AIM分析证实了高键序,并确定在S2I42 +和Se2I42 +中观察到的弱键是真实的,并且这些阳离子中的键本质上是共价键。完整的MO分析证实S2I42 +包含三个sigma和两个pi键,正电荷基本上均匀地分布在所有原子上,S-2和S2I42 +中两个I-2(+)单元之间的键合最好用两个相互垂直的4c2e pi * -pi *键,以及在Se2I42 +中,两个SeI2 +部分通过6c2e pi * -pi *键连接,两者均与先前提出的模型一致。 VB处理为MO分析提供了一种补充方法,并洞察了弱键的形成如何影响其他键。 NBO分析和计算出的AIM电荷表明,EI2 +单元之间的静电排斥力最小(E = S,Se)和正电荷的离域化是解释为什么S2I42 +和Se2I42 +偏爱非经典结构的主要原因。 S2I42 +和Se2I42 +的结构差异与弱S-I sigma键相比具有较高的S-S pi键强度以及与Se2I42 +的结构相比,S2I42 +结构中正电荷的离域增加导致了额外的稳定性。对E2X42 +系列(E = S,Se,Te; X = Cl,Br,I)的研究表明,只有S2I42 +才采用高度np(pi)-np(pi)(n> = 3)键合的结构,而所有其他药物都支持pi键结合的Se2I42 +结构。 S2I42 +的理论键序计算证实了先前介绍的基于实验的S-S(2.1-2.3)和I-I(1.3-1.5)键的键序。确定该SS键在分离的化合物中具有最高的报告SS键顺序,并且其键序与拟议的三键[[Me3Si](2)CH ](2)(Pr-i)SiSi = SiSi(Pr-i)[CH(SiMe3)(2)](2),具体取决于所用键序的定义。

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