Ion-Exchange Characteristics of a Layered Metal Sulfide for Removal of Sr2+ from Aqueous Solutions

被引:13
|
作者
Li, Xingliang [1 ,2 ]
Liu, Bijun [1 ]
Jian, Yuan [1 ,2 ]
Zhong, Wenbin [1 ]
Mu, Wanjun [1 ]
He, Jiaheng [1 ]
Ma, Zongping [1 ]
Liu, Guoping [1 ]
Luo, Shunzhong [1 ]
机构
[1] China Acad Engn Phys, Inst Nucl Phys & Chem, Mianyang, Peoples R China
[2] Sichuan Univ, Inst Nucl Sci & Technol, Chengdu 610064, Peoples R China
关键词
Ion-exchange; Layered metal sulfide; Radioactive waste; Sr2+ ion; INDIUM-SULFIDE; CESIUM; SORPTION; ADSORPTION; SELECTIVITY; MANGANESE; SORBENTS; KINETICS; BATCH; GLASS;
D O I
10.1080/01496395.2011.629397
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
Strontium-90 (Sr-90) is the most abundant radionuclide in radioactive wastes, and is typically isolated by treatment with an inorganic ion-exchange material. Most inorganic ion-exchange materials contain oxygen. The ion-exchange chemistry of layered metal sulfides is relatively poorly explored compared with that of oxide ion-exchange materials. Here, a layered metal sulfide (UCR-28), constructed from [ZnGe3S9(H2O)](4-) supertetrahedral clusters, was prepared under hydrothermal conditions and used for the removal of Sr2+ ions from aqueous solution. Batch experiments showed that UCR-28 had affinity for Sr2+ ions at pH values ranging from 1 to 10 and the maximum ion-exchange capacity of UCR-28 (50.1 mg/g) was achieved at pH 7. Thermodynamic parameters for the ion-exchange process were evaluated, and the enthalpy and Gibbs free energy results suggested the Sr2+ ion-exchange process was endothermic and spontaneous. The ion-exchange data were a good fit to the Langmuir model. In addition, the metal sulfide reported here had a relatively high thermal stability. The results of this study provide insight into the largely unknown ion-exchange chemistry of metal sulfides, and could be used for design of new chalcogenide frameworks with improved ion-exchange properties.
引用
收藏
页码:896 / 902
页数:7
相关论文
共 50 条
  • [31] Removal of n-butanol from aqueous solutions by ion-exchange membranes containing organic counterions
    Boucher-Sharma, AP
    Chowdhury, G
    Matsuura, T
    JOURNAL OF APPLIED POLYMER SCIENCE, 1999, 74 (01) : 47 - 58
  • [32] PREFERENTIAL REMOVAL OF ALCOHOLS FROM AQUEOUS-SOLUTIONS BY ION-EXCHANGE MEMBRANES CONTAINING ORGANIC COUNTERIONS
    PASTERNAK, M
    DORAWALA, TG
    JOURNAL OF POLYMER SCIENCE PART A-POLYMER CHEMISTRY, 1991, 29 (06) : 915 - 917
  • [33] The rapid removal of iodide from aqueous solutions using a silica-based ion-exchange resin
    Ye, Zhenxiong
    Chen, Lifeng
    Liu, Caocong
    Ning, Shunyan
    Wang, Xinpeng
    Wei, Yuezhou
    REACTIVE & FUNCTIONAL POLYMERS, 2019, 135 : 52 - 57
  • [34] THERMODYNAMIC TREATMENT OF H+/SR2+ ION-EXCHANGE IN GAMMA-TITANIUM PHOSPHATE
    TROBAJO, C
    SUAREZ, M
    LLAVONA, R
    GARCIA, JR
    RODRIGUEZ, J
    THERMOCHIMICA ACTA, 1991, 186 (02) : 253 - 258
  • [35] A NEW ION-EXCHANGE MEDIA FOR THE REMOVAL OF HEAVY-METAL IONS FROM AQUEOUS-SOLUTION
    TALU, O
    SHAH, DB
    STREET, KW
    PHILIPP, WH
    WAN, W
    ABSTRACTS OF PAPERS OF THE AMERICAN CHEMICAL SOCIETY, 1994, 207 : 217 - IEC
  • [36] Ion effects of Sr2+, Cs+ and I- on DNA in aqueous solutions
    Shen, Xin
    Ding, Ku-Ke
    Zhang, Feng-Shou
    CHEMICAL PHYSICS LETTERS, 2013, 574 : 100 - 105
  • [37] Removal of Cs1+, Sr2+ and Co2+ from aqueous solutions by adsorption on natural clinoptilolite
    Smiciklas, I.
    Dimovic, S.
    Plecas, I.
    APPLIED CLAY SCIENCE, 2007, 35 (1-2) : 139 - 144
  • [38] Highly selective inorganic crystalline ion exchange material for Sr2+ in acidic solutions
    Nenoff, TM
    Miller, JE
    Thoma, SG
    Trudell, DE
    ENVIRONMENTAL SCIENCE & TECHNOLOGY, 1996, 30 (12) : 3630 - 3633
  • [39] Surfactant removal from water solutions by means of ultrafiltration and ion-exchange
    Kowalska, Izabela
    DESALINATION, 2008, 221 (1-3) : 351 - 357
  • [40] ION-EXCHANGE EXTRACTION OF SODIUM DODECYLBENZENESULFONATE FROM AQUEOUS-SOLUTIONS
    BRAYALOVSKII, BS
    SHAMANAEV, SS
    ANIKIN, YV
    PUSHKAREV, VV
    JOURNAL OF APPLIED CHEMISTRY OF THE USSR, 1980, 53 (06): : 973 - 975