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首页> 外文期刊>Applied Geochemistry: Journal of the International Association of Geochemistry and Cosmochemistry >Nano-hematite prepared by activation of natural siderite and its performance on immobilization of Eu(III)
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Nano-hematite prepared by activation of natural siderite and its performance on immobilization of Eu(III)

机译:纳米硝酸盐通过自然硫酸盐激活制备及其对欧盟固定化的性能(III)

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Abstract Nano-hematite was synthesized by calcining siderite (FeCO3) and characterized using TEM, XRD, FT-IR, XPS, specific surface area and potentiometric titration. The characterization results showed that nano-hematite was synthesized by calcining FeCO3 under atmospheric conditions. The batch experiments indicated the adsorption of Eu(III) on nano-hematite significantly increased with increasing pH 2.0–6.0 while the Eu(III) adsorption was independent of ionic strength. The presence of CO3 2? promoted the adsorption of Eu(III) on nano-hematite over a wide range of pH conditions. The adsorption kinetics and isotherms of Eu(III) on nano-hematite were fitted well by pseudo-second kinetic model and Langmuir model, respectively. The maximum adsorption capacity of Eu(III) on nano-hematite calculated by Langmuir equations was 13.02?mg/g at pH 5.5 and T?=?293?K. The desorption experiments revealed that the adsorption of Eu(III) on nano-hematite was an irreversible process. According to the XPS analysis, the oxygen-containing functional groups of nano-hematite (i.e., Fe-OH) played a crucial role in the Eu(III) adsorption. These findings demonstrated that the nano-hematite could be used as a valuable adsorbent for preconcentration and immobilization of Eu(III) from aqueous solutions in the environmental cleanup. Highlights ? Nano-hematite was satisfactorily synthesized by calcining Fe2CO3 at air. ? Inner-sphere surface complexation dominated Eu(III) adsorption on nano-hematite. ? The adsorption of Eu(III) on nano-hematite was an irreversible process. ? Fe-OH played a leading role in the Eu(III) adsorption by XPS analysis. ]]>
机译:<![CDATA [ 抽象 通过煅烧Siderite合成纳米血液(FECO 3 ),并使用TEM,XRD,FT-IR,XPS,比表面积和电位滴定。表征结果表明,通过煅烧FECO 3 在大气条件下合成纳米硫酸盐。批量实验表明,随着欧盟(III)吸附而越来越多地,欧盟(III)对纳米硝酸钠的吸附显着增加,而EU(III)吸附与离子强度无关。 CO 3 2?促进欧盟(III)对纳米的吸附赤铁矿在各种pH条件下。纯第二动力学模型和朗美模型分别井综合氧化物(III)对欧盟(III)的吸附动力学和等温度。通过Langmuir方程计算的欧核(III)对南氧化物的最大吸附容量在pH 5.5和Tα时在13.02Ω·mg / g。解吸实验表明,EU(III)对纳米硝酸盐的吸附是不可逆的方法。根据XPS分析,纳米硝酸盐(即Fe-OH)的含氧官能团在EU(III)吸附中起着至关重要的作用。这些发现表明,纳米硝酸盐可以用作来自环境清理中的水溶液的Eu(III)的预浓缩和固定的有价值的吸附剂。 亮点 纳米血液通过煅烧Fe CO 3 在空中。 内部球形表面络合主导的欧盟(iii)在纳米硝酸盐上吸附。 吸附欧盟(III)纳米硝酸盐是一种不可逆的过程。 Fe-OH在XPS分析中发挥了欧盟(iii)吸附的主导作用。 ]]>

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