Capillary condensation in MMS and pore structure characterization

被引:358
作者
Neimark, AV [1 ]
Ravikovitch, PI [1 ]
机构
[1] TRI Princeton, Princeton, NJ 08542 USA
关键词
nitrogen adsorption; argon adsorption; capillary condensation; density functional theory; disjoining pressure; hysteresis; mesopores; MCM-41; pore size distribution;
D O I
10.1016/S1387-1811(01)00251-7
中图分类号
O69 [应用化学];
学科分类号
081704 ;
摘要
Phenomena of capillary condensation and desorption in siliceous mesoporous molecular sieves (MMS) with cylindrical channels are studied by means of the non-local density functional theory (NLDFT). The results are compared with macroscopic thermodynamic approaches based on Kelvin-Cohan (KC) and Derjaguin-Broekhoff-de Beer (DBdB) equations. We show that: The KC equations. which constitute the basis of the traditional BJH method for the pore size distribution analysis, are in error even in pores as large as 20 nm. The DBdB equations with consistently determined thickness of the adsorbed layer (disjoining pressure isotherm) can be justified for pores wider than approximate to7 nm in diameter. As the pore size decreases. the macroscopic arguments become less accurate. and the NLDFT and DBdB results differ significantly in pores smaller than approximate to4 nm. The adsorption-desorption isotherms predicted by NLDFT are found to be in quantitative agreement with the experimental nitrogen (77 K) and argon (87 K) isotherms on MCM-41 type materials with pores larger than 5 nm. Therewith, the experimental desorption branch corresponds to the equilibrium capillary condensation/evaporation transition. The experimental adsorption branch corresponds to the spontaneous spinodal condensation, which occurs at the limit of stability of adsorption films, The NLDFT method has been developed for the calculation of pore size distributions from both the adsorption and desorption isotherms. (C) 2001 Elsevier Science B.V. All rights reserved.
引用
收藏
页码:697 / 707
页数:11
相关论文
共 56 条
  • [31] Lastoskie CM, 1997, STUD SURF SCI CATAL, V104, P745
  • [32] Lawson C.L., 1995, SIAM
  • [33] Evaluating pore sizes in mesoporous materials: A simplified standard adsorption method and a simplified Broekhoff-de Boer method
    Lukens, WW
    Schmidt-Winkel, P
    Zhao, DY
    Feng, JL
    Stucky, GD
    [J]. LANGMUIR, 1999, 15 (16) : 5403 - 5409
  • [34] MOLECULAR SIMULATION OF FLUID ADSORPTION IN BUCKYTUBES AND MCM-41
    MADDOX, MW
    GUBBINS, KE
    [J]. INTERNATIONAL JOURNAL OF THERMOPHYSICS, 1994, 15 (06) : 1115 - 1123
  • [35] Characterization of MCM-41 using molecular simulation: Heterogeneity effects
    Maddox, MW
    Olivier, JP
    Gubbins, KE
    [J]. LANGMUIR, 1997, 13 (06) : 1737 - 1745
  • [36] MIAHARA M, 1998, FUNDAMENTALS ADSORPT, V6, P249
  • [37] Pore size analysis of MCM-41 type adsorbents by means of nitrogen and argon adsorption
    Neimark, AV
    Ravikovitch, PI
    Grun, M
    Schuth, F
    Unger, KK
    [J]. JOURNAL OF COLLOID AND INTERFACE SCIENCE, 1998, 207 (01) : 159 - 169
  • [38] Adsorption hysteresis in nanopores
    Neimark, AV
    Ravikovitch, PI
    Vishnyakov, A
    [J]. PHYSICAL REVIEW E, 2000, 62 (02): : R1493 - R1496
  • [39] Neimark AV, 2000, STUD SURF SCI CATAL, V128, P51
  • [40] Condensation pressures in small pores: An analytical model based on density functional theory
    Nilson, RH
    Griffiths, SK
    [J]. JOURNAL OF CHEMICAL PHYSICS, 1999, 111 (09) : 4281 - 4290