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A Novel Synthesis Routine for Woodwardite and Its Affinity towards Light (La Ce Nd) and Heavy (Gd and Y) Rare Earth Elements

机译:一种新型的铝硅藻土合成规程及其对轻(LaCeNd)和重(Gd和Y)稀土元素的亲和力

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摘要

A synthetic Cu-Al-SO4 layered double hydroxide (LDH), analogue to the mineral woodwardite [Cu1−xAlx(SO4)x/2(OH)2·nH2O], with x < 0.5 and n ≤ 3x/2, was synthesised by adding a solution of Cu and Al sulphates to a solution with NaOH. The pH values were kept constant at 8.0 and 10.0 by a continuous addition of NaOH. The material obtained had poor crystallinity, turbostratic structure, and consisted of nanoscopic crystallites. The analyses performed in order to characterise the obtained materials (X-ray diffraction (XRD), thermogravimetry (TG), and Fourier Transform Infra-Red (FTIR) spectroscopy) showed that the Cu-Al-SO4 LDH is very similar to woodwardite, although it has a smaller layer spacing, presumably due to a lesser water content than in natural samples. The synthesis was performed by adding light rare earth elements (LREEs) (La, Ce, and Nd) and heavy rare earth elements (HREEs) (Gd and Y) in order to test the affinity of the Cu-Al-SO4 LDH to the incorporation of REEs. The concentration of rare earth elements (REEs) in the solid fraction was in the range of 3.5–8 wt %. The results showed a good affinity for HREE and Nd, especially for materials synthesised at pH 10.0, whereas the affinities for Ce and La were much lower or non-existent. The thermal decomposition of the REE-doped materials generates a mixture of Cu, Al, and REE oxides, making them interesting as precursors in REE oxide synthesis.
机译:合成了x- <0.5且n≤3x / 2的合成Cu-Al-SO4层状双氢氧化物(LDH),类似于矿物木质硅铝石[Cu1-xAlx(SO4)x / 2(OH)2·nH2O]。通过将硫酸铜和硫酸铝溶液添加到氢氧化钠溶液中。通过连续加入NaOH使pH值保持恒定在8.0和10.0。所获得的材料具有差的结晶度,涡轮层结构,并且由纳米级微晶组成。为了表征获得的材料(X射线衍射(XRD),热重分析(TG)和傅立叶变换红外(FTIR)光谱)而进行的分析表明,Cu-Al-SO4 LDH非常类似于伍德沃石,尽管它的层间距更小,但是大概是由于水含量比天然样品少。通过添加轻稀土元素(LREEs)(La,Ce和Nd)和重稀土元素(HREEs)(Gd和Y)进行合成,以测试Cu-Al-SO4 LDH对金属的亲和力。掺入稀土元素。固体成分中稀土元素(REE)的浓度范围为3.5–8 wt%。结果表明对HREE和Nd具有良好的亲和力,特别是对于在pH 10.0下合成的材料,而对Ce和La的亲和力要低得多或不存在。掺杂REE的材料的热分解产生了Cu,Al和REE氧化物的混合物,这使其成为REE氧化物合成中的前驱物变得很有趣。

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