On the mechanism of hydrogen storage in a metal-organic framework material

被引:176
作者
Belof, Jonathan L. [1 ]
Stern, Abraham C. [1 ]
Eddaoudi, Mohamed [1 ]
Space, Brian [1 ]
机构
[1] Univ S Florida, Dept Chem, Tampa, FL 33620 USA
关键词
D O I
10.1021/ja0737164
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
Monte Carlo simulations were performed modeling hydrogen sorption in a recently synthesized metal-organic framework material (MOF) that exhibits large molecular hydrogen uptake capacity. The MOF is remarkable because at 78 K and 1.0 atm it sorbs hydrogen at a density near that of liquid hydrogen (at 20 K and 1.0 atm) when considering H-2 density in the pores. Unlike most other MOFs that have been investigated for hydrogen storage, it has a highly ionic framework and many relatively small channels. The simulations demonstrate that it is both of these physical characteristics that lead to relatively strong hydrogen interactions in the MOF and ultimately large hydrogen uptake. Microscopically, hydrogen interacts with the MOF via three principle attractive potential energy contributions: Van der Waals, charge-quadrupole, and induction. Previous simulations of hydrogen storage in MOFs and other materials have not focused on the role of polarization effects, but they are demonstrated here to be the dominant contribution to hydrogen physisorption. Indeed, polarization interactions in the MOF lead to two distinct populations of dipolar hydrogen that are identified from the simulations that should be experimentally discernible using, for example, Raman spectroscopy. Since polarization interactions are significantly enhanced by the presence of a charged framework with narrow pores, MOFs are excellent hydrogen storage candidates.
引用
收藏
页码:15202 / 15210
页数:9
相关论文
共 86 条
[1]  
ABRAM G, 1995, P IEEE COMP SOC, V95, P263
[2]  
Allen M.P., 1989, Computer Simulation of Liquids
[3]   Computational study of molecular hydrogen in zeolite Na-A.: I.: Potential energy surfaces and thermodynamic separation factors for ortho and para hydrogen [J].
Anderson, CR ;
Coker, DF ;
Eckert, J ;
Bug, ALR .
JOURNAL OF CHEMICAL PHYSICS, 1999, 111 (16) :7599-7613
[4]  
[Anonymous], 1994, CRC HDB CHEM PHYS
[5]   ATOM DIPOLE INTERACTION MODEL FOR MOLECULAR POLARIZABILITY - APPLICATION TO POLYATOMIC-MOLECULES AND DETERMINATION OF ATOM POLARIZABILITIES [J].
APPLEQUIST, J ;
CARL, JR ;
FUNG, KK .
JOURNAL OF THE AMERICAN CHEMICAL SOCIETY, 1972, 94 (09) :2952-+
[6]   CALCULATION OF RAMAN-SCATTERING PARAMETERS FOR METHANE AND HALOMETHANES FROM AN ATOM DIPOLE INTERACTION-MODEL [J].
APPLEQUIST, J ;
QUICKSALL, CO .
JOURNAL OF CHEMICAL PHYSICS, 1977, 66 (08) :3455-3459
[7]   AN ANISOTROPIC POLARIZABLE WATER MODEL - INCORPORATION OF ALL-ATOM POLARIZABILITIES INTO MOLECULAR MECHANICS FORCE-FIELDS [J].
BERNARDO, DN ;
DING, YB ;
KROGHJESPERSEN, K ;
LEVY, RM .
JOURNAL OF PHYSICAL CHEMISTRY, 1994, 98 (15) :4180-4187
[8]   Size effects on the hydrogen storage properties of nanostructured metal hydrides:: A review [J].
Berube, Vincent ;
Radtke, Gregg ;
Dresselhaus, Mildred ;
Chen, Gang .
INTERNATIONAL JOURNAL OF ENERGY RESEARCH, 2007, 31 (6-7) :637-663
[9]   SIMULATIONS OF THE THERMODYNAMIC PROPERTIES OF KRYPTON ADSORBED ON GRAPHITE AT 100-K [J].
BHETHANABOTLA, V ;
STEELE, W .
JOURNAL OF PHYSICAL CHEMISTRY, 1988, 92 (11) :3285-3291
[10]   Improved theoretical pi-pi* absorption and circular dichroic spectra of helical polypeptides using new polarizabilities of atoms and NC'O chromophores [J].
Bode, KA ;
Applequist, J .
JOURNAL OF PHYSICAL CHEMISTRY, 1996, 100 (45) :17825-17834