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由一维螺旋链组成的块状碲的键合性质。

The Nature of Bonding in Bulk Tellurium Composed of One-Dimensional Helical Chains.

机构信息

Department of Physics, Research Institute for Natural Science, and HYU-HPSTAR-CIS High Pressure Research Center , Hanyang University , 222 Wangsimni-ro , Seongdong-Ku, Seoul 04763 , Korea.

International Laboratory for Quantum Functional Materials of Henan, and School of Physics and Engineering , Zhengzhou University , Zhengzhou 450001 , People's Republic of China.

出版信息

Inorg Chem. 2018 May 7;57(9):5083-5088. doi: 10.1021/acs.inorgchem.7b03244. Epub 2018 Apr 26.

Abstract

Bulk tellurium (Te) is composed of one-dimensional (1D) helical chains which have been considered to be coupled by van der Waals (vdW) interactions. However, on the basis of first-principles density functional theory calculations, we here propose a different bonding nature between neighboring chains: i.e., helical chains made of normal covalent bonds are connected together by coordinate covalent bonds. It is revealed that the lone pairs of electrons of Te atoms participate in forming coordinate covalent bonds between neighboring chains, where each Te atom behaves as both an electron donor to neighboring chains and an electron acceptor from neighboring chains. This ligand-metal-like bonding nature in bulk Te results in the same order of bulk moduli along the directions parallel and perpendicular to the chains, contrasting with the large anisotropy of bulk moduli in vdW crystals. We further find that the electron effective masses parallel and perpendicular to the chains are almost the same as each other, consistent with the observed nearly isotropic electrical resistivity. It is thus demonstrated that the normal/coordinate covalent bonds parallel/perpendicular to the chains in bulk Te lead to a minor anisotropy in structural and transport properties.

摘要

块状碲由一维(1D)螺旋链组成,这些螺旋链被认为是通过范德华(vdW)相互作用耦合在一起的。然而,基于第一性原理密度泛函理论计算,我们在这里提出了相邻链之间不同的键合性质:即由正常共价键组成的螺旋链通过配位共价键连接在一起。研究表明,碲原子的孤对电子参与形成相邻链之间的配位共价键,其中每个碲原子既是相邻链的电子供体,也是相邻链的电子受体。块状碲中这种配体-金属样的键合性质导致了与链平行和垂直方向上的体弹性模量相同的顺序,与 vdW 晶体中大的体弹性模量各向异性形成对比。我们进一步发现,与链平行和垂直的电子有效质量几乎彼此相等,与观察到的几乎各向同性电阻率一致。因此,证明了块状碲中与链平行/垂直的正常/配位共价键导致结构和输运性质的各向异性较小。

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