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首页> 外文期刊>Journal of Materials Science >Hollow Fe3O4@mesoporous carbon core-shell microspheres for efficient sorption of radionuclides
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Hollow Fe3O4@mesoporous carbon core-shell microspheres for efficient sorption of radionuclides

机译:空心Fe3O4 @介孔碳核-壳微球可有效吸附放射性核素

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摘要

Hollow Fe3O4@mesoporous carbon (h-Fe3O4@mC) microspheres have been synthesized using silica nanospheres as the sacrificial matrix. Physiochemical properties, surface morphology, and internal structures of the as-prepared products have been carefully characterized. The synthesized h-Fe3O4@mC microspheres have been applied to adsorb radionuclides from aqueous solutions and can be easily separated by an external magnetic field. Effects of contact time, pH, and initial concentrations on the interaction of h-Fe3O4@mC with U(VI), Eu(III), Co(II), and Sr(II) have been studied. The sorption is strongly dependent on pH and can reach equilibrium within 2 h. Dependence of sorption on pH is relevant to both the surface properties of sorbents and the relative distribution of radionuclides species in solutions. Due to the mesoporous structure, carboxyl-functionalized surface, and low density, h-Fe3O4@mC shows efficient sorption for radionuclides even in acidic solutions. The maximum sorption capacities of U(VI), Eu(III), Co(II), and Sr(II) on h-Fe3O4@mC at pH 3.0 and T = 298 K calculated from the Langmuir model are 0.566, 1.013, 0.860, and 0.733 mmol g(-1), respectively. Findings of the present work suggest that h-Fe3O4@mC can serve as a promising candidate for recovery and removal of radionuclides from aqueous solutions in the environmental pollution management.
机译:以二氧化硅纳米球为牺牲基质,合成了空心Fe3O4 @亚孔碳(h-Fe3O4 @ mC)微球。对所制备产品的理化性质,表面形态和内部结构进行了仔细表征。合成的h-Fe3O4 @ mC微球已被用于从水溶液中吸附放射性核素,并且可以很容易地被外部磁场分离。研究了接触时间,pH和初始浓度对h-Fe3O4 @ mC与U(VI),Eu(III),Co(II)和Sr(II)相互作用的影响。吸附强烈依赖于pH,可以在2小时内达到平衡。吸附对pH的依赖性与吸附剂的表面性质和溶液中放射性核素种类的相对分布有关。由于介孔结构,羧基官能化表面和低密度,h-Fe3O4 @ mC甚至在酸性溶液中也显示出对放射性核素的有效吸附。根据Langmuir模型计算,在pH值为3.0和T = 298 K的h-Fe3O4 @ mC上,U(VI),Eu(III),Co(II)和Sr(II)的最大吸附容量为0.566、1.013、0.860 ,和0.733 mmol g(-1)分别。目前工作的发现表明,h-Fe3O4 @ mC可以作为环境污染管理中从水溶液中回收和去除放射性核素的有前途的候选者。

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