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双原子分子的键级。

Bond orders of the diatomic molecules.

作者信息

Chen Taoyi, Manz Thomas A

机构信息

Department of Chemical & Materials Engineering, New Mexico State University Las Cruces NM 88001 USA

出版信息

RSC Adv. 2019 May 31;9(30):17072-17092. doi: 10.1039/c9ra00974d. eCollection 2019 May 29.

Abstract

Bond order quantifies the number of electrons dressed-exchanged between two atoms in a material and is important for understanding many chemical properties. Diatomic molecules are the smallest molecules possessing chemical bonds and play key roles in atmospheric chemistry, biochemistry, lab chemistry, and chemical manufacturing. Here we quantum-mechanically calculate bond orders for 288 diatomic molecules and ions. For homodiatomics, we show bond orders correlate to bond energies for elements within the same chemical group. We quantify and discuss how semicore electrons weaken bond orders for elements having diffuse semicore electrons. Lots of chemistry is effected by this. We introduce a first-principles method to represent orbital-independent bond order as a sum of orbital-dependent bond order components. This bond order component analysis (BOCA) applies to any spin-orbitals that are unitary transformations of the natural spin-orbitals, with or without periodic boundary conditions, and to non-magnetic and (collinear or non-collinear) magnetic materials. We use this BOCA to study all period 2 homodiatomics plus Mo, Cr, ClO, ClO, and Mo(acetate). Using Manz's bond order equation with DDEC6 partitioning, the Mo-Mo bond order was 4.12 in Mo and 1.46 in Mo(acetate) with a sum of bond orders for each Mo atom of ∼4. Our study informs both chemistry research and education. As a learning aid, we introduce an analogy between bond orders in materials and message transmission in computer networks. We also introduce the first working quantitative heuristic model for all period 2 homodiatomic bond orders. This heuristic model incorporates s-p mixing to give heuristic bond orders of ¾ (Be), 1¾ (B), 2¾ (C), and whole number bond orders for the remaining period 2 homodiatomics.

摘要

键级量化了材料中两个原子之间发生的电子着装交换的数量,对于理解许多化学性质很重要。双原子分子是具有化学键的最小分子,在大气化学、生物化学、实验室化学和化学制造中起着关键作用。在这里,我们用量子力学方法计算了288种双原子分子和离子的键级。对于同核双原子分子,我们表明键级与同一化学族内元素的键能相关。我们量化并讨论了半芯电子如何削弱具有弥散半芯电子的元素的键级。许多化学过程都受此影响。我们引入了一种第一性原理方法,将与轨道无关的键级表示为与轨道相关的键级分量之和。这种键级分量分析(BOCA)适用于作为自然自旋轨道的酉变换的任何自旋轨道,无论有无周期性边界条件,也适用于非磁性和(共线或非共线)磁性材料。我们使用这种BOCA来研究所有第2周期的同核双原子分子以及Mo、Cr、ClO、ClO和Mo(乙酸盐)。使用带有DDEC6划分的曼兹键级方程,Mo中Mo - Mo键级为4.12,Mo(乙酸盐)中为1.46,每个Mo原子的键级总和约为4。我们的研究为化学研究和教育提供了参考。作为一种学习辅助工具,我们引入了材料中的键级与计算机网络中的消息传输之间的类比。我们还引入了第一个适用于所有第2周期同核双原子键级的有效定量启发式模型。这个启发式模型纳入了s - p混合,给出了启发式键级:¾(Be)、1¾(B)、2¾(C),其余第2周期同核双原子分子的键级为整数。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/8abf/9064470/b22542c05ab0/c9ra00974d-f1.jpg

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