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Isomorphous Substitution in a Flexible Metal–Organic Framework: Mixed-Metal, Mixed-Valent MIL-53 Type Materials

机译:柔性金属-有机框架中的同构取代:混合金属,混合价MIL-53型材料

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摘要

Mixed-metal iron–vanadium analogues of the 1,4-benzenedicarboxylate (BDC) metal–organic framework MIL-53 have been synthesized solvothermally in N,N′-dimethylformamide (DMF) from metal chlorides using initial Fe:V ratios of 2:1 and 1:1. At 200 °C and short reaction time (1 h), materials (Fe,V)II/IIIBDC(DMF1–xFx) crystallize directly, whereas the use of longer reaction times (3 days) at 170 °C yields phases of composition [(Fe,V)III0.5(Fe,V)0.5II(BDC)(OH,F)]0.5–·0.5DMA+ (DMA = dimethylammonium). The identity of the materials is confirmed using high-resolution powder X-ray diffraction, with refined unit cell parameters compared to known pure iron analogues of the same phases. The oxidation states of iron and vanadium in all samples are verified using X-ray absorption near edge structure (XANES) spectroscopy at the metal K-edges. This shows that in the two sets of materials each of the vanadium and the iron centers are present in both +2 and +3 oxidation states. The local environment and oxidation state of iron is confirmed by 57Fe Mössbauer spectrometry. Infrared and Raman spectroscopies as a function of temperature allowed the conditions for removal of extra-framework species to be identified, and the evolution of μ2-hydroxyls to be monitored. Thus calcination of the mixed-valent, mixed-metal phases [(Fe,V)III0.5(Fe,V)0.5II(BDC)(OH,F)]0.5–·0.5DMA+ yields single-phase MIL-53-type materials, (Fe,V)III(BDC)(OH,F). The iron-rich, mixed-metal MIL-53 shows structural flexibility that is distinct from either the pure Fe material or the pure V material, with a thermally induced pore opening upon heating that is reversible upon cooling. In contrast, the material with a Fe:V content of 1:1 shows an irreversible expansion upon heating, akin to the pure vanadium analogue, suggesting the presence of some domains of vanadium-rich regions that can be permanently oxidized to V(IV).
机译:1,4-苯二甲酸(BDC)金属-有机骨架MIL-53的混合金属铁-钒类似物已由N,N'-二甲基甲酰胺(DMF)溶剂热合成,最初的Fe:V比为2: 1和1:1。在200°C和短反应时间(1 h)下,材料(Fe,V)II / IIIBDC(DMF1-xFx)直接结晶,而在170°C下使用更长的反应时间(3天)会产生组成相[ (Fe,V)III0.5(Fe,V)0.5II(BDC)(OH,F)] 0.5-·0.5DMA +(DMA =二甲基铵)。与高分辨率的粉末X射线衍射相比,与相同相的已知纯铁类似物相比,具有精细的晶胞参数,可以确认材料的身份。使用X射线吸收近边缘结构(XANES)光谱在金属K边缘验证了所有样品中铁和钒的氧化态。这表明在两组材料中,钒和铁中心均以+2和+3氧化态存在。铁的局部环境和氧化态已通过57FeMössbauer光谱法确认。红外和拉曼光谱作为温度的函数可以确定去除框架外物种的条件,并可以监测μ2-羟基的演变。因此,煅烧混合价混合金属相[(Fe,V)III0.5(Fe,V)0.5II(BDC)(OH,F)] 0.5–·0.5DMA +会产生单相MIL-53-型材料(Fe,V)III(BDC)(OH,F)。富含铁的混合金属MIL-53具有不同于纯铁材料或纯V材料的结构柔韧性,加热时会产生热致孔,冷却后可逆。相比之下,Fe:V含量为1:1的材料在加热时显示出不可逆的膨胀,类似于纯钒类似物,表明存在一些可永久氧化成V(IV)的富钒区域域。

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