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Preparation of Alumina Nanorods from Chromium-Containing Alumina Sludge

机译:用含铬氧化铝污泥制备氧化铝纳米棒

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Alumina nanorods were prepared from chromium-containing alumina sludge, and the effects of doping elements, such as Cr, Fe, and Mg, were researched. The results show that the crystal transformation of alumina is restricted by the doped Cr and facilitated by the doped Fe and Mg, which is transformed from θ -Al~(2)O~(3) to α -Al~(2)O~(3) in the calcination process. Meanwhile, the crystal transformation of alumina is strongly restrained by co-doped elements from the chromium-containing alumina sludge. The doped elements change the course of phase structure transformation and slightly transform the chemical bond of the alumina nanorods. The impure elements are doped in the alumina crystal and restrain the crystalline growth of alumina nanorods according to the rules. In the sample prepared from chromium-containing alumina sludge, more Cr and Mg but fewer Fe are doped, and most Cr are existed as Cr(III). It is possible that the Fe-doping is confined by the competition of Cr and Mg. Moreover, the lattice imperfection of alumina is caused by doped ions, such as Cr, Fe, and Mg, and the chemical state of O and Al are affected. The findings by these experiments provide essential information for eliminating pollution and promoting comprehensive utilization of the chromium-containing alumina sludge.
机译:用含铬氧化铝污泥制备氧化铝纳米棒,并研究了Cr,Fe和Mg等掺杂元素的作用。结果表明,氧化铝的晶体转变受掺杂的Cr的限制,而受掺杂的Fe和Mg的促进,从θ-Al〜(2)O〜(3)转变为α-Al〜(2)O〜 (3)在煅烧过程中。同时,来自含铬氧化铝污泥的共掺杂元素强烈限制了氧化铝的晶体转变。掺杂元素改变了相结构转变的过程,并略微改变了氧化铝纳米棒的化学键。根据该规则,将不纯元素掺杂在氧化铝晶体中,并抑制氧化铝纳米棒的晶体生长。由含铬氧化铝污泥制备的样品中,Cr和Mg较多,但Fe掺杂较少,并且大多数Cr以Cr(III)的形式存在。 Fe掺杂可能受Cr和Mg的竞争限制。此外,氧化铝的晶格缺陷是由诸如Cr,Fe和Mg等掺杂离子引起的,并且会影响O和Al的化学状态。这些实验的发现为消除污染和促进含铬氧化铝污泥的综合利用提供了重要信息。

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