Li Guoliang, Huang Chunxiang, Xie Yaoming, Robinson Gregory H, Schaefer Henry F
Key Laboratory of Theoretical Chemistry of Environment, Ministry of Education, Center for Computational Quantum Chemistry, School of Chemistry, South China Normal University, Guangzhou, 510006, P. R. China.
Department of Chemistry and Center for Computational Quantum Chemistry, University of Georgia, Athens, Georgia, 30602, USA.
Chemistry. 2020 Nov 6;26(62):14159-14166. doi: 10.1002/chem.202002582. Epub 2020 Oct 1.
There is considerable interest, from both experimental and theoretical perspectives, in molecules incorporating multiple bonds between main group elements. Herein, we not only consider the parent molecules HE=EH (E=As, Sb, Bi), but also a number of their isomers. For each E H molecule, a number of different structures were optimized with four different DFT methods. Final structures were determined with the coupled cluster method CCSD(T) using large basis sets, namely cc-pVQZ-PP, incorporating relativistic psuedopotentials. All feasible dissociation pathways are examined. For all three E H molecules the trans isomer lies lowest in energy, with the cis isomer higher by 2.7 (As), 2.1 (Sb), and 1.8 (Bi) kcal mol , respectively. However, both cis and trans structures should be observable, as large barriers (27.7, 20.5, and 17.7 kcal mol ) separate them. For both the cis and trans structures, in the infrared the strong E-H stretching frequencies should also be observable. Only the cis structures have dipole moments (0.62, 0.01, and 0.83 debye, respectively), and their observation by microwave spectroscopy would be stunning. Also considered were the higher energy vinylidene-like, pyramidal, monobridged, and linear structures. We conclude that molecules such as HSb=SbH-Fe(CO) , HBi=BiH-Fe(CO) , and related systems, should be feasible synthetic targets.
从实验和理论的角度来看,主族元素之间含有多重键的分子引起了人们极大的兴趣。在此,我们不仅考虑母体分子HE=EH(E=As、Sb、Bi),还考虑它们的一些异构体。对于每个EH分子,用四种不同的密度泛函理论(DFT)方法优化了许多不同的结构。使用包含相对论赝势的大基组cc-pVQZ-PP,通过耦合簇方法CCSD(T)确定了最终结构。研究了所有可行的解离途径。对于所有这三种EH分子,反式异构体能量最低,顺式异构体的能量分别比反式异构体高2.7(As)、2.1(Sb)和1.8(Bi)kcal·mol⁻¹。然而,顺式和反式结构都应该是可以观察到的,因为它们之间存在较大的能垒(27.7、20.5和17.7 kcal·mol⁻¹)。对于顺式和反式结构,在红外光谱中也应该可以观察到强烈的E-H伸缩频率。只有顺式结构具有偶极矩(分别为0.62、0.01和0.83德拜),通过微波光谱对它们进行观测将是惊人的。还考虑了能量较高的类亚乙烯基、金字塔形、单桥和线性结构。我们得出结论,诸如HSb=SbH-Fe(CO)₅、HBi=BiH-Fe(CO)₅以及相关体系等分子应该是可行的合成目标。