Department of Chemistry, Indian Institute of Technology Bombay, Powai, Mumbai, 400076, India.
Dalton Trans. 2013 Jul 14;42(26):9755-63. doi: 10.1039/c3dt50786f. Epub 2013 May 20.
A facile synthetic strategy for the generation of a new class of inorganic-organic-inorganic hybrids is reported. Replacement of labile DMSO ligands from the preformed Double-Four-Ring (D4R) zinc phosphate cluster [Zn(dipp){(CH3)2SO}]4 by the addition of 4-aminopyridine (4-ampyr) results in the isolation of another discrete D4R cluster [Zn(dipp)(4-ampyr)]4 (1), which forms a hydrogen-bonded framework in solid-state. If 1-methyl-4,4'-bipyridinium salts are employed instead, tetra-cationic D4R cluster [Zn(dipp)(L)]4[PF6]4 (2) and [Zn(dipp)(L)]4[ClO4]4 (3) (L = 1-methyl-4,4'-bipyridinium, dipp = 2,6-di-iso-propylphenylphosphate) are isolated. Compound 2 was reacted with three different polyoxometalates, [TBA]4[Mo8O26] (POM-1), [TBA]4[PMo11VO40] (POM-2), and [TBA]4[SiMo12O40] (POM-3) to obtain amorphous hybrids, [Zn(dipp)(L)]4[Mo8O26] (4), [Zn(dipp)(L)]4[PMo11VO40] (5), and [Zn(dipp)(L)]4[SiMo12O40] (6), respectively. All the hybrid materials have been characterized by analytical and spectroscopic studies. The molecular structure of 1 has also been determined by single-crystal XRD measurements. N2 gas sorption analyses show moderate BET surface area and also establish the mesoporous nature of the hybrids 4-6. The catalytic potential of hybrids 4, 5 and 6 has been explored towards epoxidation of cyclohexene.
报道了一种新的无机-有机-无机杂化材料的简便合成策略。通过添加 4-氨基吡啶(4-ampyr)取代预形成的双四-环(D4R)磷酸锌簇[Zn(dipp){(CH3)2SO}]4 中的不稳定 DMSO 配体,得到另一个离散的 D4R 簇[Zn(dipp)(4-ampyr)]4(1),其在固态中形成氢键骨架。如果使用 1-甲基-4,4'-联吡啶盐代替,则可以分离出四阳离子 D4R 簇[Zn(dipp)(L)]4[PF6]4(2)和[Zn(dipp)(L)]4[ClO4]4(3)(L=1-甲基-4,4'-联吡啶,dip=2,6-二异丙基苯基磷酸酯)。化合物 2 与三种不同的多金属氧酸盐[TBA]4[Mo8O26](POM-1)、[TBA]4[PMo11VO40](POM-2)和[TBA]4[SiMo12O40](POM-3)反应,得到无定形杂化物[Zn(dipp)(L)]4[Mo8O26](4)、[Zn(dipp)(L)]4[PMo11VO40](5)和[Zn(dipp)(L)]4[SiMo12O40](6)。所有的杂化物都通过分析和光谱研究进行了表征。1 的分子结构也通过单晶 XRD 测量确定。N2 气体吸附分析表明具有中等 BET 比表面积,并确定了杂化物 4-6 的介孔性质。杂化物 4、5 和 6 的催化潜力已被探索用于环氧化环己烯。