论文标题
发现电子转移驱动的果酱铅化学键的变化(PBX,其中X = TE,SE,S,O)
Discovering electron transfer driven changes in chemical bonding in lead chalcogenides (PbX, where X = Te, Se, S, O)
论文作者
论文摘要
了解固体中化学键的性质对于理解给定化合物的物理和化学特性至关重要。为了探索墨西哥奶油酸铅中化学键的变化(PBX,其中X = TE,SE,S,O),已经应用了属性,键断裂和机械键合描述符的结合。我们探索的结果揭示了电子转移驱动的从PBX(X = TE,SE,S)中的Metavalent键到beta-PBO中的离子 - 共价键。元键合的特征是通过共享单个电子和小电子传递(ET)来固定相邻原子。 The transition from metavalent to iono-covalent bonding manifests itself in clear changes in these quantum-mechanical descriptors (ES and ET), as well as in property-based descriptors (i.e. Born effective charge, dielectric function, effective coordination number (ECON) and mode-specific Grueneisen parameter, and in bond breaking descriptors (PME). Metavalent bonding collapses, if significant charge localization occurs at the离子核心(ET)和/或原子间区域(ES)主要改变了电子转移的程度,以量身定制材料的性能,例如化学键和电子极化性,光学带隙和光带间隙和带有介绍构成的材料的特征的特征。 设计。
Understanding the nature of chemical bonding in solids is crucial to comprehend the physical and chemical properties of a given compound. To explore changes in chemical bonding in lead chalcogenides (PbX, where X = Te, Se, S, O), a combination of property-, bond breaking- and quantum-mechanical bonding descriptors have been applied. The outcome of our explorations reveals an electron transfer driven transition from metavalent bonding in PbX (X = Te, Se, S) to iono-covalent bonding in beta-PbO. Metavalent bonding is characterized by adjacent atoms being held together by sharing about a single electron and small electron transfer (ET). The transition from metavalent to iono-covalent bonding manifests itself in clear changes in these quantum-mechanical descriptors (ES and ET), as well as in property-based descriptors (i.e. Born effective charge, dielectric function, effective coordination number (ECON) and mode-specific Grueneisen parameter, and in bond breaking descriptors (PME). Metavalent bonding collapses, if significant charge localization occurs at the ion cores (ET) and/or in the interatomic region (ES). Predominantly changing the degree of electron transfer opens possibilities to tailor materials properties such as the chemical bond and electronic polarizability, optical band gap and optical interband transitions characterized by the imaginary part of the dielectric function. Hence, the insights gained from this study highlight the technological relevance of the concept of metavalent bonding and its potential for materials design.