Sorption and possible preconcentration of europium and gadolinium ions from aqueous solutions by Mn3O4 nanoparticles

被引:0
作者
Moubarak A. Sayed
A. I. Helal
S. M. Abdelwahab
H. H. Mahmoud
H. F. Aly
机构
[1] Nuclear Research Centre,Central Laboratory for Elemental and Isotopic Analysis
[2] Atomic Energy Authority,Chemistry Department, Faculty of Science
[3] Ain-shams University,Hot Laboratories Center
[4] Atomic Energy Authority,Radioisotope Department
[5] Nuclear Research Center,undefined
[6] Atomic Energy Authority,undefined
来源
Chemical Papers | 2020年 / 74卷
关键词
Mn; O; nanoparticles; Co-precipitation; Crystallite size; Gadolinium; Europium; Preconcentration;
D O I
暂无
中图分类号
学科分类号
摘要
Mn3O4 nanoparticles were prepared by co-precipitation method. The prepared samples had been characterized to find the compositional, structural, and functional properties, by means of EDX, XRD, and FTIR, respectively. The prepared manganese oxide nanoparticles (Mn3O4 NPs) have average crystallite size of 30–35 nm. The effect of different parameters on the uptake of Eu(III) and Gd(III) by Mn3O4 nanoparticles such as pH, initial metal concentration, shaking time, and temperature was examined. The shaking time for both adsorption and desorption was found to be 5 h. The sorption capacities at equilibrium with regards to Eu(III) and Gd(III) were 26.8 and 12.6 mg/g, respectively. Kinetically, the sorption of both elements fitted well to pseudo-second-order model. Sorption equilibrium isotherm obeys more favorably the Langmuir isotherm model. Desorption process of Eu(III) and Gd(III) from Mn3O4 NPs was highly managed using 2.0 M HNO3. A preconcentration factor of 70 and 20 was obtained for Gd and Eu, respectively, using 0.1 g of the Mn3O4 nanoparticles.
引用
收藏
页码:619 / 630
页数:11
相关论文
共 245 条
[41]  
Khoobi M(2007)Kinetic, sorption isotherms, pseudo-first-order model and pseudo-second-order model studies of Cu (II) and Pb(II) using defatted Nephrol Dial Transpl 22 3179-259
[42]  
Nazmara S(2005) seed powder J Hazard Mater 125 252-1341
[43]  
Mahvi AH(2011)Experimental study of the removal of copper from aqueous solutions by adsorption using sawdust Anal Chem 83 1336-1064
[44]  
Dhaouadi H(2013)One-step synthesis of colloidal Mn Adsorption 19 1055-108
[45]  
Ghodbane O(2013)O TrAC, Trends Anal Chem 43 100-84
[46]  
Hosni F(2018) and γ-Fe J Hazard Mater 342 77-1556
[47]  
Touati F(2013)O Int J Environ Anal Chem 93 1537-S3238
[48]  
Dubal DP(2017) nanoparticles at room temperature Arab J Chem 10 S3229-8
[49]  
Dhawale DS(2017)Cloud point extraction with/without chelating agent on-line coupled with inductively coupled plasma optical emission spectrometry for the determination of trace rare earth elements in biological samples Appl Clay Sci 139 1-41
[50]  
Gujar TP(2014)Preconcentration of rare earth elements on silica gel loaded with 1-phenyl-3-methyl-4-benzoylpyrazol-5-one prior to their determination by ICP-AES Int J Eng Res Develop 10 34-2115