不同镁铁复合氧化物去除稀水溶液中的硼酸盐和亚砷酸盐

Kohei Isoi, Fumika Shirasugi, Mitsuaki Matsuoka, J. Hayashi, N. Murayama
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摘要

在不同的煅烧温度下,合成了不同配比的镁铁复合氧化物,并将其作为阴离子脱除剂。对镁铁复合氧化物的晶体结构和比表面积进行了评价,并对初始浓度为20 mg/dm 3的稀水溶液进行了B和As(III)的去除试验。分析了影响其有效去除的主要因素。根据化学成分和煅烧温度的不同,得到了具有不同比表面积和不同晶体结构的镁铁复合氧化物。当混合比例分别为Mg:Fe = 1:1、2:1和3:1时,Mg-Fe型LDH主要作为前驱体在煅烧前形成。将Mg-Fe型LDH在400℃下煅烧得到非晶复合氧化物。近似地说,Mg-Fe复合氧化物的比表面积随着Fe掺量的增加而增大。另一方面,在600℃以上,随着煅烧温度的升高,它们的比表面积也有减小的趋势。作为稀水溶液中B的脱除机理,认为(1)脱除过程中Mg- fe复合氧化物水化作用在颗粒表面形成Mg(OH) 2, (2) Mg- fe复合氧化物部分水化作用重构LDH结构占主导地位。研究还发现:(1)MgO颗粒表面的水化作用,(2)部分水化作用对LDH结构的重构,(3)铁与As(III)的亲和力,(4)高比表面积对As(III)的去除是有效的。
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Removal of Borate and Arsenite in Dilute Aqueous Solution with Various Mg-Fe Composite Oxides
Mg-Fe composite oxides with various mixing ratios were synthesized at different calcination temperature, to use them as anion removal agents. Crystal structure and specific surface area of the Mg-Fe composite oxides were evaluat - ed. The B and As(III) removal tests from dilute aqueous solution (initial concentration: 20 mg/dm 3 ) were conducted by using the Mg-Fe composite oxides. The predominant factors for removing them efficiently were considered. The Mg-Fe composite oxides having various specific surface area and different crystal structure are obtained, de pending on the chemical composition and the calcination temperature. When the mixing ratios are set to Mg:Fe = 1:1, 2:1 and 3:1, respectively, Mg-Fe type LDH is mainly formed as a precursor before calcination. Amorphous composite oxide is obtained by the calcination of Mg-Fe type LDH at 400°C. Approximately, the specific surface area of Mg-Fe composite oxides is increasing with an increase in the mixing ratio of Fe. On the other hand, the specific surface area of them also tends to decrease as the calcination temperature increases over 600°C. As the B removal mechanism from dilute aqueous solution, it is considered that (1) the formation of Mg(OH) 2 on the particle surface by the hydration of Mg-Fe composite oxides during removal operation and (2) the reconstruction of LDH structure by the partial hydration of Mg-Fe composite oxides are predominant. It is also found that (1) the hydration on the surface of MgO particles, (2) the reconstruction of LDH structure by the partial hydration, (3) the affinity with As(III) due to Fe and (4) the high specific surface area are effective for the As(III) removal.
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