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Aluminum-based heteropolytungstates of the Keggin structure: Synthesis, isomerism, and application.

机译:Keggin结构的铝基杂多钨酸盐:合成,异构和应用。

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摘要

A new method of preparation of the aluminum-centered tungstate of the Keggin structure, [AlW12O40]5−, was accomplished. Condensation of Al(III) and tungstate in boiling pH 7.7 solution leads to the formation of a mixture of α, β2, and β3-[Al(AlOH2)W11O39] 6−. Further condensation of this isomeric mixture leads to the formation of α- and β-[AlW12O40]5− , in an overall crude yield of 95% for the two steps. Equilibrium between α- and β-[AlW12O40]5− was observed by 27Al NMR spectra of 0.1 M aqueous solutions of either pure α-H5[AlW12O40] or β-H5[AlW12O40] heated at 473K. From Keq and ΔG = −RT ln Keq, α-[AlW12O40]5− is more stable than β-[AlW12O40] 5− by 2.1 ± 0.5 kcal/mol at the given conditions. The monolacunary derivative of [AlW12O40]5− , [AlW11O39]9−, was prepared by selective base hydrolysis of either the α- or β-isomer of [AlW 12O40]5−. Equilibrium between α-[AlW 11O39]9− and β3-[AlW 11O39]9− was observed; Keq (also determined from 27Al NMR spectroscopy experiments) gives a difference in energy between these two isomers of 0.3 kcal/mol (333 K, 0.13 M). Isomeric equilibration studies of [Al(AlOH2)W11O 39]6− showed that the α-isomer is sufficiently more stable than any of the β-isomers that solutions of mixtures of [Al(AlOH 2)W11O39]6− isomers may be converted quantitatively to the α-isomer. The α-isomer of [AlW 11O39]9− may be prepared selectively under certain conditions, from either α- or β-[AlW12O 40]5−, as the potassium salt, α-K9[AlW 11O39]. While itself possessing marginal solubility, slurries of α-K9[AlW11O39] react with aqueous metal cations to form more soluble transition-metal substituted POMs (TMSPs). These reactions result in the formation of anions of the formula [AlM n+W11O39](9−n)−, where Mn+ = Al(III), Co(II), Co(III), Mn(II), Mn(III), Mn(IV), [VIVO]2+, and [VVO]3+ . These anions were characterized by 27Al, 183W, and 51V NMR (as appropriate), infrared spectroscopy, UV-Visible spectroscopy, cyclic voltammetry, pH titration (to determine the pKa of water ligand on the transition metal, as appropriate), and elemental analysis. α-[AlVW11O40]6− was used as an oxidant for a phenolic lignin model compound, 1-(3,5-dimethoxy-4-hydroxyphenyl)-2-(phenoxy)propane-1,3-diol.
机译:提出了一种新的制备Keggin结构以铝为中心的钨酸盐的方法,即[AlW 12 O 40 ] 5-。 Al(III)和钨酸在沸腾的pH 7.7溶液中的冷凝导致形成α,β 2 和β 3 -[Al(AlOH 2 )W 11 O 39 ] 6 − 。这种异构混合物的进一步缩合导致在总原油中形成α-和β-[AlW 12 O 40 ] 5-两步收率均为95%。通过 27 Al NMR光谱观察到α-和β-[AlW 12 O 40 ] 5- 之间的平衡纯的α-H 5 [AlW 12 O 40 ]或β-H 5 的0.1 M水溶液> [AlW 12 O 40 ]在473K下加热。从K eq 和Δ G = − RT ln K eq ,α-[AlW 12 < / sub> O 40 ] 5− 比β-[AlW 12 O 40 ] 5 − 以2.1±0.5 kcal / mol进行。 [AlW 12 O 40 ] 5− ,[AlW 11 O 39 < / sub>] 9-是通过[AlW 12 O 40 ]的α-或β-异构体的选择性碱水解制备的 5 − 。 α-[AlW 11 O 39 ] 9-与β 3 -[AlW 11观察到 O 39 ] 9 − ; K eq (也由 27 Al NMR光谱实验确定)得出这两种异构体之间的能量差为0.3 kcal / mol(333 K,0.13 M)。 [Al(AlOH 2 ] W 11 O 39 ] 6-的同等平衡研究表明,α-该异构体比任何一种β-异构体都稳定得多,使得[Al(AlOH 2 )W 11 O 39 ]的混合物的溶液< super> 6-异构体可以定量转化为α-异构体。 [AlW 11 O 39 ] 9-的α-异构体可以在一定条件下选择性地由α-或β-[ AlW 12 O 40 ] 5-,作为钾盐,α-K 9 [AlW 11 O 39 ]。尽管自身具有一定的溶解度,但α-K 9 [AlW 11 O 39 ]的浆液会与水性金属阳离子反应形成更易溶的过渡分子,金属取代的POM(TMSP)。这些反应导致形成式[AlM n + W 11 O 39 ] (9-n)-< / super>,其中M n + = Al(III),Co(II),Co(III),Mn(II),Mn(III),Mn(IV),[V IV O] 2 + 和[V V O] 3+ 。这些阴离子的特征在于 27 Al, 183 W和 51 NMR(视情况而定),红外光谱,紫外可见光谱,循环伏安法,pH滴定法(酌情确定过渡金属上水配体的pK a )和元素分析。 α-[AlVW 11 O 40 ] 6- 被用作酚类木质素模型化合物1-(3,5-二甲氧基-4-羟基苯基)-2-(苯氧基)丙烷-1,3-二醇。

著录项

  • 作者

    Cowan, Jennifer Janeen.;

  • 作者单位

    Emory University.;

  • 授予单位 Emory University.;
  • 学科 Chemistry Inorganic.
  • 学位 Ph.D.
  • 年度 2001
  • 页码 174 p.
  • 总页数 174
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 无机化学;
  • 关键词

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