Proof of the ISS-concept for LTA and FAU membranes and their characterization by extended gas permeation studies

Publikation: Beitrag in FachzeitschriftÜbersichtsarbeitForschungPeer-Review

Autoren

  • Mariano Noack
  • P. Kölsch
  • A. Dittmar
  • M. Stöhr
  • G. Georgi
  • M. Schneider
  • U. Dingerdissen
  • Armin Feldhoff
  • Jürgen Caro

Externe Organisationen

  • Universität Rostock
Forschungs-netzwerk anzeigen

Details

OriginalspracheEnglisch
Seiten (von - bis)1-20
Seitenumfang20
FachzeitschriftMicroporous and Mesoporous Materials
Jahrgang102
Ausgabenummer1-3
Frühes Online-Datum20 Dez. 2006
PublikationsstatusVeröffentlicht - 4 Mai 2007

Abstract

Molecular sieve membranes are expected to separate molecules by size and shape provided that the intercrystalline defect transport is negligible. However, in the case of a non-negligible mass transport through the grain boundaries in the polycrystalline zeolite layer, the separation properties of the membrane become influenced by both the regular and defective transport. Nevertheless, also in this case proper separation performance is found due to adsorptive and/or diffusive interactions of the mixture components with the membrane. In a previous report [M. Noack, P. Kölsch, A. Dittmar, M. Stöhr, G. Georgi, R. Eckelt, J. Caro, Micropor. Mesopor. Mater. 97 (2006) 88] the concept of crystal intergrowth supporting substances (ISS) was demonstrated. The charge neutralization of the negatively charged crystal surfaces of a growing MFI membrane by the positively charged ISS molecules improves the crystal intergrowth and results in a higher permeation selectivity. LTA and FAU membranes can separate water-organic mixtures in an excellent way but they fail in shape-selective gas separations. Therefore, many attempts were made to improve the separation properties of LTA and FAU membranes for gases. Zeta potential measurements on the Al-rich zeolite crystals LTA and FAU show a strong negative surface charge like it was found in [Noack et al., 2006] for MFI. In this work LTA and FAU multi-layer membranes were prepared by using an ISS. These membranes were characterized by SEM, XRD, permporosimetry, single gas permeation in combination with different probe molecules for the selective blocking of the micro and mesopore system. The results are discussed on the basis of pore condensation or pore narrowing according to the Kelvin and Halsey equations. Repeated strong de-watering of the hydrophilic LTA and FAU membranes have changed the membrane structure.

ASJC Scopus Sachgebiete

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Proof of the ISS-concept for LTA and FAU membranes and their characterization by extended gas permeation studies. / Noack, Mariano; Kölsch, P.; Dittmar, A. et al.
in: Microporous and Mesoporous Materials, Jahrgang 102, Nr. 1-3, 04.05.2007, S. 1-20.

Publikation: Beitrag in FachzeitschriftÜbersichtsarbeitForschungPeer-Review

Noack M, Kölsch P, Dittmar A, Stöhr M, Georgi G, Schneider M et al. Proof of the ISS-concept for LTA and FAU membranes and their characterization by extended gas permeation studies. Microporous and Mesoporous Materials. 2007 Mai 4;102(1-3):1-20. Epub 2006 Dez 20. doi: 10.1016/j.micromeso.2006.12.024
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title = "Proof of the ISS-concept for LTA and FAU membranes and their characterization by extended gas permeation studies",
abstract = "Molecular sieve membranes are expected to separate molecules by size and shape provided that the intercrystalline defect transport is negligible. However, in the case of a non-negligible mass transport through the grain boundaries in the polycrystalline zeolite layer, the separation properties of the membrane become influenced by both the regular and defective transport. Nevertheless, also in this case proper separation performance is found due to adsorptive and/or diffusive interactions of the mixture components with the membrane. In a previous report [M. Noack, P. K{\"o}lsch, A. Dittmar, M. St{\"o}hr, G. Georgi, R. Eckelt, J. Caro, Micropor. Mesopor. Mater. 97 (2006) 88] the concept of crystal intergrowth supporting substances (ISS) was demonstrated. The charge neutralization of the negatively charged crystal surfaces of a growing MFI membrane by the positively charged ISS molecules improves the crystal intergrowth and results in a higher permeation selectivity. LTA and FAU membranes can separate water-organic mixtures in an excellent way but they fail in shape-selective gas separations. Therefore, many attempts were made to improve the separation properties of LTA and FAU membranes for gases. Zeta potential measurements on the Al-rich zeolite crystals LTA and FAU show a strong negative surface charge like it was found in [Noack et al., 2006] for MFI. In this work LTA and FAU multi-layer membranes were prepared by using an ISS. These membranes were characterized by SEM, XRD, permporosimetry, single gas permeation in combination with different probe molecules for the selective blocking of the micro and mesopore system. The results are discussed on the basis of pore condensation or pore narrowing according to the Kelvin and Halsey equations. Repeated strong de-watering of the hydrophilic LTA and FAU membranes have changed the membrane structure.",
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note = "Funding Information: We thank the Federal Ministry of Education, Science, Research and Technology of Germany, the Senate of Berlin, Department of Science, Research and Culture and the European Union, EFRE 2000 2005 1/0 for the financial support of the project no. 03C3014. Drs. Ballschuh and Seibt from GNF Berlin-Adlershof is thanked for the synthesis of the ISS used in this work.",
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Download

TY - JOUR

T1 - Proof of the ISS-concept for LTA and FAU membranes and their characterization by extended gas permeation studies

AU - Noack, Mariano

AU - Kölsch, P.

AU - Dittmar, A.

AU - Stöhr, M.

AU - Georgi, G.

AU - Schneider, M.

AU - Dingerdissen, U.

AU - Feldhoff, Armin

AU - Caro, Jürgen

N1 - Funding Information: We thank the Federal Ministry of Education, Science, Research and Technology of Germany, the Senate of Berlin, Department of Science, Research and Culture and the European Union, EFRE 2000 2005 1/0 for the financial support of the project no. 03C3014. Drs. Ballschuh and Seibt from GNF Berlin-Adlershof is thanked for the synthesis of the ISS used in this work.

PY - 2007/5/4

Y1 - 2007/5/4

N2 - Molecular sieve membranes are expected to separate molecules by size and shape provided that the intercrystalline defect transport is negligible. However, in the case of a non-negligible mass transport through the grain boundaries in the polycrystalline zeolite layer, the separation properties of the membrane become influenced by both the regular and defective transport. Nevertheless, also in this case proper separation performance is found due to adsorptive and/or diffusive interactions of the mixture components with the membrane. In a previous report [M. Noack, P. Kölsch, A. Dittmar, M. Stöhr, G. Georgi, R. Eckelt, J. Caro, Micropor. Mesopor. Mater. 97 (2006) 88] the concept of crystal intergrowth supporting substances (ISS) was demonstrated. The charge neutralization of the negatively charged crystal surfaces of a growing MFI membrane by the positively charged ISS molecules improves the crystal intergrowth and results in a higher permeation selectivity. LTA and FAU membranes can separate water-organic mixtures in an excellent way but they fail in shape-selective gas separations. Therefore, many attempts were made to improve the separation properties of LTA and FAU membranes for gases. Zeta potential measurements on the Al-rich zeolite crystals LTA and FAU show a strong negative surface charge like it was found in [Noack et al., 2006] for MFI. In this work LTA and FAU multi-layer membranes were prepared by using an ISS. These membranes were characterized by SEM, XRD, permporosimetry, single gas permeation in combination with different probe molecules for the selective blocking of the micro and mesopore system. The results are discussed on the basis of pore condensation or pore narrowing according to the Kelvin and Halsey equations. Repeated strong de-watering of the hydrophilic LTA and FAU membranes have changed the membrane structure.

AB - Molecular sieve membranes are expected to separate molecules by size and shape provided that the intercrystalline defect transport is negligible. However, in the case of a non-negligible mass transport through the grain boundaries in the polycrystalline zeolite layer, the separation properties of the membrane become influenced by both the regular and defective transport. Nevertheless, also in this case proper separation performance is found due to adsorptive and/or diffusive interactions of the mixture components with the membrane. In a previous report [M. Noack, P. Kölsch, A. Dittmar, M. Stöhr, G. Georgi, R. Eckelt, J. Caro, Micropor. Mesopor. Mater. 97 (2006) 88] the concept of crystal intergrowth supporting substances (ISS) was demonstrated. The charge neutralization of the negatively charged crystal surfaces of a growing MFI membrane by the positively charged ISS molecules improves the crystal intergrowth and results in a higher permeation selectivity. LTA and FAU membranes can separate water-organic mixtures in an excellent way but they fail in shape-selective gas separations. Therefore, many attempts were made to improve the separation properties of LTA and FAU membranes for gases. Zeta potential measurements on the Al-rich zeolite crystals LTA and FAU show a strong negative surface charge like it was found in [Noack et al., 2006] for MFI. In this work LTA and FAU multi-layer membranes were prepared by using an ISS. These membranes were characterized by SEM, XRD, permporosimetry, single gas permeation in combination with different probe molecules for the selective blocking of the micro and mesopore system. The results are discussed on the basis of pore condensation or pore narrowing according to the Kelvin and Halsey equations. Repeated strong de-watering of the hydrophilic LTA and FAU membranes have changed the membrane structure.

KW - FAU membranes

KW - Influence of ISS

KW - LTA membranes

KW - Permeation properties

KW - Separation of gases

KW - Zeta potential

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U2 - 10.1016/j.micromeso.2006.12.024

DO - 10.1016/j.micromeso.2006.12.024

M3 - Review article

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VL - 102

SP - 1

EP - 20

JO - Microporous and Mesoporous Materials

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