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Preparation and intercalation reactions of nano-structural materials, Mn-Al LDH

机译:纳米结构材料Mn-Al LDH的制备和嵌入反应

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Hydrotalcite (HT) or hydrotalcite-like compounds (HTlc) are layered double hydroxides belonging to the class of anionic clays. The structure of these compounds are very similar to that of brucite, Mg(OH), where some of Mg represented as [M] are isomorphously replaced by Al represented as [M] and the net positive charge is compensated by the inter-layered exchangeable anion (A). LDH has been receiving increasing attention in recent years, owing to its potential technological applications such as catalysis, electrode, optical memory, separator, adsorbent, precursor for composite materials, and ion exchange. The general formula of these compounds can be represented as: [MM(OH)]·A·mHO with M and M as metal cations and A as exchangeable anion. LDHs also possess relatively large surface areas and high anion-exchange capacities. Because of these properties, LDHs have been studied for removing toxic anionic species from aqueous systems. Thermal decomposition of these materials by calcination above 420°C results in the formation of high surface area basic mixed oxides which are reported to be potential candidates in catalyzing various reactions involved in the synthesis of a variety of fine chemicals. Indeed at this temperature, the as formed mixed oxides solid solution can regenerate upon rehydratation the HT structure with the suitable anions present in solution. Therefore, this so-called reconstruction process may be used to improve the sorption of anionic species. The LDH has been synthesized by the coprecipitation method at pH constant. The material has been obtained with [Mn/Al] molar ratio of 2.0. The product is characterized by X-ray diffraction (XRD), spectroscopy infra red (FTIR), and differential thermal analys- s / thermo gravimetric analysis (DTA/TG). Dosages of polluted solutions have been realized by spectrometry UV visible.
机译:水滑石(HT)或类水滑石化合物(HTlc)是属于阴离子粘土类别的层状双氢氧化物。这些化合物的结构与水镁石Mg(OH)的结构非常相似,其中以[M]表示的某些Mg被以[M]表示的Al同构取代,并且净净正电荷被层间可交换物质补偿。阴离子(A)。由于其潜在的技术应用,例如催化,电极,光学记忆,隔板,吸附剂,复合材料的前体和离子交换,LDH近年来受到越来越多的关注。这些化合物的通式可以表示为:[MM(OH)]·A·mHO,其中M和M为金属阳离子,A为可交换阴离子。 LDHs还具有较大的表面积和较高的阴离子交换能力。由于这些特性,已经研究了LDHs从水性体系中去除有毒阴离子物质。在高于420°C的温度下通过煅烧将这些材料热分解,导致形成高表面积的碱性混合氧化物,据报道这些氧化物是催化多种精细化学物质合成中涉及的各种反应的潜在候选物。实际上,在该温度下,形成的混合氧化物固溶体可以在溶液中存在合适的阴离子的情况下通过水合使HT结构再生。因此,可以使用这种所谓的重构过程来改善阴离子种类的吸附。 LDH已通过共沉淀法在pH恒定下合成。已经获得[Mn / Al]摩尔比为2.0的材料。该产品的特征在于X射线衍射(XRD),红外光谱(FTIR)和差示热分析/热重分析(DTA / TG)。通过可见光分光光度法已经实现了污染溶液的剂量。

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