In situ Na·Cu3(BTC)2 and Li·Cu3(BTC)2 nanoporous MOFs synthesis for enhancing H2 storage at ambient temperature

被引:12
作者
Anbia M. [1 ]
Faryadras M. [1 ]
机构
[1] Research Laboratory of Nanoporous Materials, Faculty of Chemistry, Iran University of Science and Technology, Farjam Street, Narmak, Tehran
关键词
(Cu[!sub]3[!/sub](BTC)[!sub]2[!/sub]); Hydrogen adsorption; Lithium doping; Metal–organic framework; Sodium doping;
D O I
10.1007/s40097-015-0167-9
中图分类号
学科分类号
摘要
Na·Cu3(BTC)2 and Li·Cu3(BTC)2 (MOF) were synthesized using in situ sodium and lithium doping as hydrogen adsorbing materials. Phase stability and microstructure of the Na·Cu3(BTC)2 and Li·Cu3(BTC)2 materials were characterized by FT-IR, XRD, SEM, BET, and TGA. After in situ ions doping, the basic structures of Na·Cu3(BTC)2 and Li·Cu3(BTC)2 materials were not changed, but the surface area increased from 1300 to 1434 and 1445 m2 g−1, and the amount of hydrogen adsorbed increased from 1 to 1.4 and 1.6 wt% for Na·Cu3(BTC)2 and Li·Cu3(BTC)2 materials, respectively. Enhancement of hydrogen adsorption after sodium and lithium ion doping could be due to physical interaction (binding energy interaction) between hydrogen molecules and sodium ions and also due to increase of the surface area. It maybe that sodium and lithium ions act as an additional adsorption sites and adsorb hydrogen molecules. © 2015, The Author(s).
引用
收藏
页码:357 / 364
页数:7
相关论文
共 25 条
[1]  
Dutta S., A review on production, storage of hydrogen and its utilization as an energy resource, J. Ind. Eng. Chem., 20, pp. 1148-1156, (2014)
[2]  
Xiang Z., Cao D., Porous covalent–organic materials: synthesis, clean energy application and design, J. Mater. Chem. A, 1, pp. 2691-2718, (2013)
[3]  
Sculley J., Yuan D., Zhou H., The current status of hydrogen storage in metal–organic frameworks—updated, Energy Environ. Sci., 4, pp. 2721-2735, (2011)
[4]  
Anbia M., Hoseini V., Sheykhi S., Sorption of methane, hydrogen and carbon dioxide on metal-organic framework, iron terephthalate (MOF-235), J. Ind. Eng. Chem., 18, pp. 1149-1152, (2012)
[5]  
Stergiannakos T., Tylianakis E., Klontzas E., Trikalitis P.N., Froudakis G.E., Hydrogen storage in novel Li-doped corrole metal-organic frameworks, J. Phys. Chem. C, 116, pp. 8359-8363, (2012)
[6]  
Balat M., Potential importance of hydrogen as a future solution to environmental and transportation problems, Int. J. Hydrog. Energy, 33, pp. 4013-4029, (2008)
[7]  
Li Y., Yang R.T., Hydrogen storage in metal-organic and covalent-organic frameworks by spillover, AIChE J., 54, 1, pp. 269-279, (2008)
[8]  
Panella B., Hones K., Muller U., Trukhan N., Schubert M., Putter H., Hirscher M., Desorption studies of hydrogen in metal-organic frameworks, Angew. Chem. Int. Ed., 47, pp. 2138-2142, (2008)
[9]  
Hu X., Fan M., Towler B.F., Radosz M., Bell D.A., Plumb O.A., Hydrogen adsorption and storage, Coal Gasification and its Applications, pp. 157-245, (2010)
[10]  
Rowsell J.L.C., Yaghi O.M., Strategies for hydrogen storage in metal-organic frameworks, Angew. Chem. Int. Ed., 44, pp. 4670-4679, (2005)