期刊文献+

纳米Co/rGO磁性复合吸附材料的制备及对Cu^2+的吸附性能 被引量:1

Preparation of nano Co/rGO magnetic materials and the adsorption properties to Cu^2+ions
原文传递
导出
摘要 以改进Hummer法制备的薄片状氧化石墨烯(GO)为载体和模板负载钴离子,然后采用原位还原法制得纳米金属Co/石墨烯磁性复合吸附材料(Co/rGO),并将其应用于对Cu^2+的吸附和脱除,以期为高效可复用的铜离子脱除剂的合成与应用提供指导。实验结果证实,Co/rGO复合材料具有超顺磁性,能够很方便的使用磁铁进行分离并在无磁场情况下振荡分散。Co/rGO复合材料对Cu^2+具有稳定的吸附/脱附性能,实验条件下对Cu^2+的最大吸附容量达到117.5 mg/g且5 min内实现吸附平衡,远优于其原料GO的60 min吸附容量27.6 mg/g。本工作系统考察了NaOH加入量、络合剂种类、溶剂种类等关键因素对Co粒子在rGO载体上形貌和分布特性的影响,比较了不同合成条件下的复合材料对Cu^2+吸附效果的影响,并对优选条件下制备的Co/rGO复合材料进行了FT-IR,XRD,SEM表征。研究结果表明,纳米Co/rGO磁性材料对Cu^2+的吸附过程更符合Freundlich模型,属于多层吸附。室温下吸附焓ΔH=17.81 kJ/mol,吸附反应平衡常数K^θ=3.65。当初始Cu^2+浓度为39.22 mg/L时,对Cu^2+的吸附率为93.47%,五次吸附/脱附循环后吸附容量仍保持在初始值的94%,每次吸附后溶液中残余Cu^2+浓度均满足钴电解液对杂质铜离子的浓度去除要求(5 mg/L)或GB 8978-1996污水综合排放标准3级(2 mg/L),有望在相关领域发挥作用。 Flaky graphene oxide(GO)prepared by the improved Hummer method was used as a carrier and template to load cobalt ions.Then,nano-metal Co/graphene magnetic composite adsorption material(Co/rGO)was prepared using in situ reduction method and was applied to adsorb and remove Cu^2+ to provide the guidance for the synthesis and application of remover with efficient and reusable copper ion.The experimental results showed that Co/rGO composite materials had super paramagnetism,and could be easily separated by magnets as well as be oscillating dispersed without magnetic field.Co/rGO composite materials had stable adsorption and desorption properties for Cu^2+ .The maximum adsorption capacity for Cu^2+ could reach 117.5 mg/g under experimental conditions and the adsorption balance could be achieved within 5 min,which was far superior to its raw material GO with the adsorption capacity of 27.6 mg/g in 60 min.In this work,the key factors including the amount of NaOH addition,the type of complexant,and the type of solvent on the morphology and distribution characteristics of Co particles on rGO carrier were systematically investigated.The adsorption effects for Cu^2+ of composite materials under different synthesis conditions were compared.The properties of Co/rGO composite materials prepared in preferred conditions were characterized by FTIR,XRD and SEM.The results showed that the adsorption process of Cu^2+ by nano-Co/rGO magnetic materials was more consistent with Freundlich model and belonged to multilayer adsorption.The adsorption enthalpyΔH was 17.81 kJ/mol,and the equilibrium constant of adsorption reaction K^θ was 3.65 at room temperature.When the initial concentration of Cu^2+ was 39.22 mg/L,the desorption rate exceeded 93%,and initial value of adsorption capacity remained at 94%after five adsorption/desorption cycles.The residual concentration of Cu^2+ in the solution after each adsorption always met the requirements of cobalt electrolyte for the removal of impurity copper ions(5 mg/L)or GB 8978-1996 level 3(2 mg/L)of comprehensive sewage discharge,which was expected to play a role in related fields.
作者 张晶晶 李建 肖清贵 张绘 杜嬛 薛天艳 齐涛 Jingjing ZHANG;Jian LI;Qinggui XIAO;Hui ZHANG;Xuan DU;Tianyan XUE;Tao QI(National Engineering Laboratory for Hydrometallurgical Cleaner Production Technology,Institute of Process Engineering,Chinese Academy of Sciences,Beijing 100190,China;Key Laboratory of Green Process and Engineering,Institute of Process Engineering,Chinese Academy of Sciences,Beijing 100190,China;College of Chemical Engineering,University of Chinese Academy of Sciences,Beijing 100049,China)
出处 《过程工程学报》 CAS CSCD 北大核心 2020年第12期1472-1482,共11页 The Chinese Journal of Process Engineering
基金 中国科学院前沿科学重点研究计划(编号:QYZDJ-SSW-JSC021) 国家自然科学基金资助项目(编号:51904286 21978304 21908231)。
关键词 原位还原法 磁性复合吸附材料 微观形貌 Cu^2+吸附 in situ reduction method magnetic composite adsorption material micromorphology Cu^2+adsorption
  • 相关文献

参考文献4

二级参考文献20

  • 1傅玲,刘洪波,邹艳红,李波.Hummers法制备氧化石墨时影响氧化程度的工艺因素研究[J].炭素,2005(4):10-14. 被引量:110
  • 2陈宗淇.Smoluchowski粒子碰撞凝并理论[M].北京:高等教育出版社,1984..
  • 3Novoselov K S, Geim A K , Morozov S V, et al. Electric field effect in atomically thin carbon films[J].Science,2004. 306(5696) :666 - 669.
  • 4Geim A K, Novoselov K S. The rise of grapheme [ J ]. Nat. Mater. 2007,6 : 183 - 191.
  • 5McAllister, Michael J Li, et 02. Single sheet functionalized graphene by oxidation and thermal expansion of graphite[J]. Chemistry of Materials. 2007. 19(18) : 4936 - 4404.
  • 6Jeffrey T P, Ted B, George C S. Computational studies of the structure, behavior upon heating, and me- chanical properties of graphite oxide [ J ]. Physical Chemistry, 2007. 111(49) :18099 - 18111.
  • 7Novoselov K S, Jiang D, Schedin F, et al. Two-dimensional atomic crystals[J]. Proceedings of the National Academy of Sciences, 2005. 102(30) :10451 - 10453.
  • 8Berger C, Song Z, Li T, et al. Electronic confinement and coherence in patterned epitaxial graphene [ J ]. Science, 2006.312:1191 - 1196.
  • 9IAang M H, Luo B, Zhi L J. Application of graphene and graphene-based materials in clean energy-related devices[J]. Energy Research,2009.33:1161 - 1170.
  • 10Hofiuchi S, et al. Carbon nanofilm with a new structure and property[J]. Appl. Phys, 2003. 42:1073-1076.

共引文献41

同被引文献8

引证文献1

相关作者

内容加载中请稍等...

相关机构

内容加载中请稍等...

相关主题

内容加载中请稍等...

浏览历史

内容加载中请稍等...
;
使用帮助 返回顶部