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基于铁(III)-多钨酸盐和 1-丁基-3-甲基咪唑阳离子的有机-无机杂化材料。

Organic-inorganic hybrid materials based on iron(III)-polyoxotungstates and 1-butyl-3-methylimidazolium cations.

机构信息

Department of Chemistry/CICECO, University of Aveiro, Aveiro, Portugal.

出版信息

Dalton Trans. 2012 Oct 21;41(39):12145-55. doi: 10.1039/c2dt31206a.

Abstract

The iron(III) μ-oxo bridged dimeric polyoxometalate (PW(11)O(39)Fe)(2)O was isolated by reacting the transition metal monosubstituted Keggin anion PW(11)O(39)Fe(H(2)O) and the ionic liquid 1-butyl-3-methylimidazolium bromide, (Bmim)Br, at pH 5.5. The crystal structure of (Bmim)(10)[(PW(11)O(39)Fe)(2)O]·0.5H(2)O (1) (monoclinic, space group P2(1)/n, Z = 4) was determined by single crystal X-ray diffraction. By changing the reaction conditions, (Bmim)(4)[PW(11)O(39)Fe(H(2)O)]·H(2)O (2) was obtained, whilst the reaction between the Bmim(+) cation and the heteropolyanion SiW(11)O(39)Fe(H(2)O, in the pH conditions used for 1, afforded (Bmim)(5)[SiW(11)O(39)Fe(H(2)O)]·4H(2)O (3). The compounds were characterized by spectroscopic techniques, thermal analysis, cyclic voltammetry, magnetic measurements and mass spectrometry. This study contributes to the understanding of iron μ-oxo dimer formation in polyoxometalate chemistry and calls attention to the influence of the counter-cations on the stability and formation of compound 1. The combination of the cationic part of ionic liquids and iron-substituted polyoxotungstates is predicted to lead to new materials with interest to catalysis, electrocatalysis and ionic liquid based nanocomposites.

摘要

铁(III)μ-氧桥联二聚多金属氧酸盐(PW(11)O(39)Fe)(2)O是通过在 pH 5.5 下反应过渡金属单取代 Keggin 阴离子PW(11)O(39)Fe(H(2)O)和离子液体 1-丁基-3-甲基咪唑溴化物(Bmim)Br 得到的。(Bmim)(10)[(PW(11)O(39)Fe)(2)O]·0.5H(2)O(1)(单斜晶系,空间群 P2(1)/n,Z = 4)的晶体结构通过单晶 X 射线衍射确定。通过改变反应条件,得到了(Bmim)(4)[PW(11)O(39)Fe(H(2)O)]·H(2)O(2),而 Bmim(+)阳离子与杂多阴离子SiW(11)O(39)Fe(H(2)O在用于 1 的 pH 条件下反应,得到了(Bmim)(5)[SiW(11)O(39)Fe(H(2)O)]·4H(2)O(3)。这些化合物通过光谱技术、热分析、循环伏安法、磁测量和质谱进行了表征。本研究有助于理解多金属氧酸盐化学中铁μ-氧二聚体的形成,并引起了对抗衡离子对化合物 1 的稳定性和形成的影响的关注。离子液体的阳离子部分和铁取代的多钨酸盐的组合预计将导致具有催化、电催化和基于离子液体的纳米复合材料的新的有兴趣的材料。

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