首页> 美国卫生研究院文献>Journal of Visualized Experiments : JoVE >Combining Solid-state and Solution-based Techniques: Synthesis and Reactivity of Chalcogenidoplumbates(II or IV)
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Combining Solid-state and Solution-based Techniques: Synthesis and Reactivity of Chalcogenidoplumbates(II or IV)

机译:结合固态技术和基于溶液的技术:硫属元素铅酸盐(II或IV)的合成和反应性

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摘要

The phases of "PbCh2" (Ch = Se, Te) are obtained from solid-state syntheses (i.e., by the fusion of the elements under inert conditions in silica glass ampules). Reduction of such phases by elemental alkaline metals in amines affords crystalline chalcogenidoplumbate(II) salts comprised of [PbTe3]2- or [Pb2Ch3]2- anions, depending upon which sequestering agent for the cations is present: crown ethers, like 18-crown-6, or cryptands, like [2.2.2]crypt. Reactions of solutions of such anions with transition-metal compounds yield (poly-)chalcogenide anions or transition-metal chalcogenide clusters, including one with a µ-PbSe ligand (i.e., the heaviest-known CO homolog).In contrast, the solid-state synthesis of a phase of the nominal composition "K2PbSe2" by successive reactions of the elements and by the subsequent solvothermal treatment in amines yields the first non-oxide/halide inorganic lead(IV) compound: a salt of the ortho-selenidoplumbate(IV) anion [PbSe4]4-. This was unexpected due to the redox potentials of Pb(IV) and Se(-II). Such methods can further be applied to other elemental combinations, leading to the formation of solutions with binary [HgTe2]2- or [BiSe3]3- anions, or to large-scale syntheses of K2Hg2Se3 or K3BiSe3 via the solid-state route.All compounds are characterized by single-crystal X-ray diffraction and elemental analysis; solutions of plumbate salts can be investigated by 205Pb and 77Se or 127Te NMR techniques. Quantum chemical calculations using density functional theory methods enable energy comparisons. They further allow for insights into the electronic configuration and thus, the bonding situation. Molecular Rh-containing Chevrel-type compounds were found to exhibit delocalized mixed valence, whereas similar telluridopalladate anions are electron-precise; the cluster with the µ-PbSe ligand is energetically favored over a hypothetical CO analog, in line with the unsuccessful attempt at its synthesis. The stability of formal Pb(IV) within the [PbSe4]4- anion is mainly due to a suitable stabilization within the crystal lattice.
机译:“ PbCh 2”的相(Ch = Se,Te)是从固态合成中获得的(即,通过在惰性条件下在石英玻璃安瓿中融合元素)。通过胺中的元素碱金属还原此类相,即可得到由[PbTe3] 2 -或[Pb2Ch3] 2 组成的硫属结晶铅盐(II) -阴离子,取决于存在的阳离子螯合剂:冠醚(如18-crown-6)或穴状配体(如[2.2.2] crypt)。此类阴离子的溶液与过渡金属化合物的反应会生成(聚)硫族化物阴离子或过渡金属硫族化物簇,包括一个具有µ-PbSe配体的簇(即最著名的CO同系物)。通过元素的连续反应和随后在胺中的溶剂热处理对标称组成“ K2PbSe2”的相进行状态合成,生成了第一种非氧化物/卤化物无机铅(IV)化合物:邻硒代硒酸盐(IV)的盐)阴离子[PbSe4] 4 -。由于Pb(IV)和Se(-II)的氧化还原电位,这是出乎意料的。此类方法可以进一步应用于其他元素组合,从而形成具有二元[HgTe2] 2 -或[BiSe3] 3 的溶液-阴离子,或通过固态途径大规模合成K2Hg2Se3或K3BiSe3。所有化合物的特征在于单晶X射线衍射和元素分析;铅盐的溶液可以通过 205 Pb和 77 Se或 127 Te NMR技术进行研究。使用密度泛函理论方法进行量子化学计算可进行能量比较。它们还使您能够洞悉电子配置,从而了解键合情况。发现含有Rh的分子式Chevrel型化合物表现出离域的混合化合价,而相似的碲化棕榈酸根阴离子是电子精确的。与合成假想法失败的尝试相一致,具有μ-PbSe配体的簇比假定的CO类似物在能量上更受青睐。 [PbSe4] 4 -阴离子中形式Pb(IV)的稳定性主要归因于晶格内的适当稳定性。

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