Suppr超能文献

新型纳米多孔氧化锌从水溶液中去除钍(IV)离子:等温线、动力学和热力学研究

Removal of thorium (IV) ions from aqueous solution by a novel nanoporous ZnO: Isotherms, kinetic and thermodynamic studies.

作者信息

Kaynar Ümit H, Ayvacıklı Mehmet, Hiçsönmez Ümran, Kaynar Sermin Çam

机构信息

Celal Bayar University, Education Faculty, Primary School Science Teaching, Demirci, Manisa, Turkey.

Celal Bayar University, Department of Physics, Manisa, Turkey.

出版信息

J Environ Radioact. 2015 Dec;150:145-51. doi: 10.1016/j.jenvrad.2015.08.014. Epub 2015 Aug 29.

Abstract

The adsorption of thorium (IV) from aqueous solutions onto a novel nanoporous ZnO particles prepared by microwave assisted combustion was studied using batch methods under different experimental conditions. The effect of contact time, solution pH, initial concentration and temperature on adsorption process was studied. The ability of this material to remove Th (IV) from aqueous solution was characterises by Langmuir, Freunlinch and Temkin adsorption isotherms. The adsorption percent and distribution coefficient for nanoporous ZnO powders in optimum conditions were 97% ± 1.02; 8080 L kg(-1)for Th (IV), respectively. Based on the Langmuir model, the maximum adsorption capacity of nanoporous ZnO for Th (IV) was found to be 1500 g kg(-1). Thermodynamic parameters were determined and discussed. The results indicated that nanoporous ZnO was suitable as sorbent material for recovery and adsorption of Th (IV) ions from aqueous solutions. The radioactive Th (VI) in surface water, sea water and waste waters from technologies producing nuclear fuels, mining (uranium and thorium) and laboratories working with radioactive materials (uranium and thorium) can be removed with this nanoporous ZnO.

摘要

采用批量法在不同实验条件下,研究了水溶液中钍(IV)在微波辅助燃烧制备的新型纳米多孔氧化锌颗粒上的吸附情况。研究了接触时间、溶液pH值、初始浓度和温度对吸附过程的影响。用朗缪尔、弗伦德里希和坦金吸附等温线表征了该材料从水溶液中去除钍(IV)的能力。在最佳条件下,纳米多孔氧化锌粉末对钍(IV)的吸附率和分配系数分别为97%±1.02;8080 L kg⁻¹。基于朗缪尔模型,发现纳米多孔氧化锌对钍(IV)的最大吸附容量为1500 g kg⁻¹。测定并讨论了热力学参数。结果表明,纳米多孔氧化锌适合作为从水溶液中回收和吸附钍(IV)离子的吸附剂材料。这种纳米多孔氧化锌可去除地表水、海水中以及核燃料生产、采矿(铀和钍)技术以及使用放射性材料(铀和钍)的实验室废水中的放射性钍(VI)。

文献AI研究员

20分钟写一篇综述,助力文献阅读效率提升50倍。

立即体验

用中文搜PubMed

大模型驱动的PubMed中文搜索引擎

马上搜索

文档翻译

学术文献翻译模型,支持多种主流文档格式。

立即体验