Physical adsorption analysis of intact supported MFI zeolite membranes

被引:9
作者
Hammond, Karl D.
Tompsett, Geoffrey A.
Auerbach, Scott M. [1 ]
Conner, W. Curtis, Jr.
机构
[1] Univ Massachusetts, Dept Chem Engn, Goessmann Lab 159, Amherst, MA 01003 USA
[2] Univ Massachusetts, Dept Chem, Amherst, MA 01003 USA
关键词
D O I
10.1021/la063256c
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
We compare the adsorption properties of intact supported silicalite membranes with those of silicalite powder and of alumina supports using nitrogen and argon as adsorbates at 77 K. We disentangle contributions from the membrane and support and find that the support contributes significantly to the total quantity adsorbed due to its relative thickness. The micropore-filling regions of the adsorption isotherms of the powder and the supported membrane are nearly identical for the membranes studied, but the isotherms differ at higher pressures the supported membranes exhibit a much higher quantity adsorbed than the powders. Despite this difference, no hysteresis is observed in the membrane isotherms, indicating a lack of mesoporosity (pores in the 2-50 nm range) in either membrane or support for this preparation. We estimate argon transport fluxes at steady state by assuming surface diffusion with both a constant and concentration-dependent Maxwell-Stefan diffusion coefficient in the zeolite and the support. Further, we use the respective adsorption isotherms to determine the thermodynamic correction factors that is, the ratios of the Fick and Maxwell-Stefan diffusion coefficients required to solve the diffusion equation. The estimated argon flux is virtually the same using adsorption data from powders and membranes. For the relatively thick supports used in our study (similar to 2 mm), we find that the support exerts a much greater influence on the predicted fluxes for a wide range of values of the ratio of the support to zeolite diffusion coefficients. We emphasize that the results are specific to the architecture of the supported membranes studied, and thus, the results should be interpreted accordingly.
引用
收藏
页码:8371 / 8384
页数:14
相关论文
共 77 条
[1]  
[Anonymous], 1986, NUMERICAL RECIPES C
[2]   Theory and simulation of jump dynamics, diffusion and phase equilibrium in nanopores [J].
Auerbach, SM .
INTERNATIONAL REVIEWS IN PHYSICAL CHEMISTRY, 2000, 19 (02) :155-198
[3]   THE DETERMINATION OF PORE VOLUME AND AREA DISTRIBUTIONS IN POROUS SUBSTANCES .1. COMPUTATIONS FROM NITROGEN ISOTHERMS [J].
BARRETT, EP ;
JOYNER, LG ;
HALENDA, PP .
JOURNAL OF THE AMERICAN CHEMICAL SOCIETY, 1951, 73 (01) :373-380
[4]   Krypton adsorption technique for assessment of structural properties of mesoporous silica and titania thin films [J].
Bartels, O ;
Zukal, A .
JOURNAL OF MATERIALS SCIENCE, 2005, 40 (9-10) :2603-2605
[5]   Loading dependence of the diffusion coefficient of methane in nanoporous materials [J].
Beerdsen, E. ;
Dubbeldam, D. ;
Smit, B. .
JOURNAL OF PHYSICAL CHEMISTRY B, 2006, 110 (45) :22754-22772
[6]   Preparation of multilayer ceramic systems for deposition of mesoporous membranes [J].
Benito, JM ;
Conesa, A ;
Rodríguez, MA .
JOURNAL OF MATERIALS SCIENCE, 2005, 40 (23) :6105-6112
[7]   Fluorescence confocal optical microscopy imaging of the grain boundary structure of zeolite MFI membranes made by secondary (seeded) growth [J].
Bonilla, G ;
Tsapatsis, M ;
Vlachos, DG ;
Xomeritakis, G .
JOURNAL OF MEMBRANE SCIENCE, 2001, 182 (1-2) :103-109
[8]   Thin films of mesoporous silica: characterization and applications [J].
Chao, KJ ;
Liu, PH ;
Huang, KY .
COMPTES RENDUS CHIMIE, 2005, 8 (3-4) :727-739
[9]   Newton-like iteration methods for solving non-linear equations [J].
Chun, Changbum ;
Ham, YoonMee .
COMMUNICATIONS IN NUMERICAL METHODS IN ENGINEERING, 2006, 22 (05) :475-487
[10]  
CONNER WC, 1995, Patent No. 5637810