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钨酸锡(SnWO₄)、钨酸铅(PbWO₄)和钒酸铋(BiVO₄)中的结构与键合:孤对电子与惰性电子对

Structure and bonding in SnWO4, PbWO4, and BiVO4: lone pairs vs inert pairs.

作者信息

Stoltzfus Matthew W, Woodward Patrick M, Seshadri Ram, Klepeis Jae-Hyun, Bursten Bruce

机构信息

Department of Chemistry, Ohio State University, 100 West 18th Avenue, Columbus, Ohio 43210, USA.

出版信息

Inorg Chem. 2007 May 14;46(10):3839-50. doi: 10.1021/ic061157g. Epub 2007 Apr 19.

Abstract

Three ternary oxides, SnWO4, PbWO4, and BiVO4, containing p-block cations with ns2np0 electron configurations, so-called lone pair cations, have been studied theoretically using density functional theory and UV-visible diffuse reflectance spectroscopy. The computations reveal significant differences in the underlying electronic structures that are responsible for the varied crystal chemistry of the lone pair cations. The filled 5s orbitals of the Sn2+ ion interact strongly with the 2p orbitals of oxygen, which leads to a significant destabilization of symmetric structures (scheelite and zircon) favored by electrostatic forces. The destabilizing effect of this interaction can be significantly reduced by lowering the symmetry of the Sn2+ site to enable the antibonding Sn 5s-O 2p states to mix with the unfilled Sn 5p orbitals. This interaction produces a localized, nonbonding state at the top of the valence band that corresponds closely with the classical notion of a stereoactive electron lone pair. In compounds containing Pb2+ and Bi3+ the relativistic contraction of the 6s orbital reduces its interaction with oxygen, effectively diminishing its role in shaping the crystal chemical preferences of these ions. In PbWO4 this leads to a stabilization of the symmetric scheelite structure. In the case of BiVO4 the energy of the Bi 6s orbital is further stabilized. Despite this stabilization, the driving force for a stereoactive lone pair distortion appears to be enhanced. The energies of structures exhibiting distorted Bi3+ environments are competitive with structures that possess symmetric Bi3+ environments. Nevertheless, the "lone pair" that results associated with a distorted Bi3+ environment in BiVO4 is more diffuse than the Sn2+ lone pair in beta-SnWO4. Furthermore, the distortion has a much smaller impact on the electronic structure near the Fermi level.

摘要

三种三元氧化物,即SnWO4、PbWO4和BiVO4,含有具有ns2np0电子构型的p区阳离子,即所谓的孤对阳离子,已使用密度泛函理论和紫外可见漫反射光谱进行了理论研究。计算结果揭示了潜在电子结构的显著差异,这些差异导致了孤对阳离子晶体化学的多样性。Sn2+离子的满5s轨道与氧的2p轨道强烈相互作用,这导致静电作用所青睐的对称结构(白钨矿和锆石)显著失稳。通过降低Sn2+位点的对称性,使反键Sn 5s - O 2p态与未填充的Sn 5p轨道混合,可以显著降低这种相互作用的失稳效应。这种相互作用在价带顶部产生一个局域化的非键态,这与立体活性电子孤对的经典概念密切相关。在含有Pb2+和Bi3+的化合物中,6s轨道的相对论收缩降低了其与氧的相互作用,有效地削弱了其在塑造这些离子晶体化学偏好方面的作用。在PbWO4中,这导致对称白钨矿结构的稳定。在BiVO4的情况下,Bi 6s轨道的能量进一步稳定。尽管有这种稳定作用,但立体活性孤对畸变的驱动力似乎增强了。具有扭曲Bi3+环境的结构的能量与具有对称Bi3+环境的结构具有竞争力。然而,与BiVO4中扭曲的Bi3+环境相关的“孤对”比β-SnWO4中的Sn2+孤对更弥散。此外,这种畸变对费米能级附近的电子结构的影响要小得多。

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