Wu Xiaomei, Zhang Yu, Dou Xiaomin, Yang Min
State Key Laboratory of Environmental Aquatic Chemistry, Research Center for Eco-Environmental Sciences, Chinese Academy of Sciences, 18 Shuangqing Road, Beijing 100085, China.
Chemosphere. 2007 Nov;69(11):1758-64. doi: 10.1016/j.chemosphere.2007.05.075. Epub 2007 Jul 10.
A trimetal oxide was developed as a fluoride adsorbent by coprecipitation of Fe(II), Al(III) and Ce(IV) salt solutions with a molar ratio of 1:4:1 under alkaline condition. The material retained amorphous structure and maintained relatively stable fluoride adsorption performance at calcination temperatures lower than 600 degrees C. The optimum pH range for fluoride adsorption was 6.0-6.5 and the adsorbent also showed high defluoridation ability around pH 5.5-7.0, which is preferable for actual application. A high fluoride adsorption capacity of 178 mg g(-1) was acquired under an equilibrium fluoride concentration of 84.5 mg l(-1), adsorbent dose of 150 mg l(-1) and pH 7.0. The adsorption isotherm could be better described by the two-site Langmuir model than the one-site model, suggesting the existence of two types of active sites on the adsorbent surface. Coexistence of high concentrations of phosphate or arsenate only led to partial inhibition of fluoride adsorption, which further suggests the existence of heterogeneous adsorption sites. Sulfate and chloride did not affect fluoride adsorption, and nitrate influenced it only when the concentration of NO(3)(-)-N exceeded 50 mg l(-1). A high desorption efficiency of 97% was achieved by treating fluoride loaded Fe-Al-Ce oxide with NaOH solution at pH 12.2. A column experiment using the adsorbent fabricated into 1mm pellets was performed at an initial fluoride concentration of 5.5 mg l(-1), space velocity of 5h(-1) and pH of 5.8, and 2240 bed volumes were treated with the effluent fluoride under 1.0 mg l(-1).
通过在碱性条件下共沉淀摩尔比为1:4:1的Fe(II)、Al(III)和Ce(IV)盐溶液,制备了一种三金属氧化物作为氟化物吸附剂。该材料保持无定形结构,在低于600℃的煅烧温度下保持相对稳定的氟化物吸附性能。氟化物吸附的最佳pH范围为6.0 - 6.5,吸附剂在pH 5.5 - 7.0左右也表现出高脱氟能力,这对于实际应用是有利的。在平衡氟浓度为84.5 mg l(-1)、吸附剂剂量为150 mg l(-1)和pH 7.0的条件下,获得了178 mg g(-1)的高氟吸附容量。与单位点模型相比,双位点Langmuir模型能更好地描述吸附等温线,表明吸附剂表面存在两种类型的活性位点。高浓度磷酸盐或砷酸盐的共存仅导致氟化物吸附的部分抑制,这进一步表明存在非均相吸附位点。硫酸盐和氯化物不影响氟化物吸附,只有当NO(3)(-)-N浓度超过50 mg l(-1)时,硝酸盐才会对其产生影响。通过用pH 12.2的NaOH溶液处理负载氟的Fe-Al-Ce氧化物,实现了97%的高解吸效率。使用制成1mm颗粒的吸附剂进行柱实验,初始氟浓度为5.5 mg l(-1),空速为5h(-1),pH为5.8,处理了2240个床体积的废水,出水氟含量低于1.0 mg l(-1)。