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Grain boundary defect elimination in a zeolite membrane by rapid thermal processing. Science 2009 325 590–593. doi:10.1126/science.1176095 abstract full article |
List of publications
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2009
1. | Microporous metal organic framework membrane on porous support using the seeded growth method. Chem. Mater. 2009 21 (20) 4920–4924. doi:10.1021/cm902032y3fec6fec911af48f07bc01443e8b0d72 |
2. | Growth patterns and shape development of zeolite nanocrystals in confined syntheses. JACS 2009 ASAP doi:10.1021/ja904466v3c846da8af8d202b0c11bfe9cb59fe3f |
3. | Grain boundary defect elimination in a zeolite membrane by rapid thermal processing. Science 2009 325 590–593. doi:10.1126/science.117609526e2db8b4288888c5838d10de25098e4 |
4. | Geometric model describing the banded morphology of particle films formed by convective assembly. Chemphyschem 2009 10 (12) 2116–2122. doi:10.1002/cphc.20090012781e885d9c4e82349335870b7f91926cd |
5. | Adsorption of fermentation inhibitors from lignocellulosic biomass hydrolyzates for improved ethanol yield and value-added product recovery. Micropor. Mesopor. Mater. 2009 122 (1-3) 143–148. doi:10.1016/j.micromeso.2009.02.025f07ba98e73ff15a2f807761f28c233a9 |
6. | A semi-empirical approach for predicting the performance of mixed matrix membranes containing selective flakes. J. Membrane Sci. 2009 326 (2) 595–607. doi:10.1016/j.memsci.2008.10.0410962c9a987fe84160847f8aec0fc3ac1 |
2008
7. | Mechanistic principles of colloidal crystal growth by evaporation-induced convective steering. Langmuir 2008 24 (23) 13683–13693. doi:10.1021/la802180d39c7ff757c60da19ccddf66aea424862 |
8. | Growth of AlPO4-5 and CoAPO-5 films from amorphous seeds. Micropor. Mesopor. Mater. 2008 115 11–22. doi:10.1016/j.micromeso.2007.11.0515a7d6c964d5051b1ea4851f76b6d845c |
9. | Removal of trivalent chromium contaminant from aqueous media using FAU-type zeolite membranes. J. Membrane Sci. 2008 312 (12) 163–173. doi:10.1016/j.memsci.2007.12.052eb3a91c18a42ab31515d3795c4541c2e |
10. | A structural resolution cryo-TEM study of the early stages of MFI growth. J. Am. Chem. Soc. 2008 130 (51) 17284–1728. doi:10.1021/ja80631672cc8cdf0e71ee1dd1ecc0837267bacd4 |
11. | Hierarchical nanofabrication of microporous crystals with ordered mesoporosity. Nature Mater. 2008 7 984–991. doi:10.1038/nmat230288d5bffa85995d82e691f1e41205e0f2 |
12. | Nanoscale reactor engineering: hydrothermal synthesis of uniform zeolite particles in massively parallel reaction chambers. Angew. Chemie Int. Ed. 2008 47 9096–9099. doi:10.1002/anie.200803103db8a7e8ef3921e56fd7c8f3424b25cd7 |
13. | Layer structure preservation during swelling, pillaring, and exfoliation of a zeolite precursor. J. Am. Chem. Soc. 2008 130 1507–1516. doi:10.1021/ja077711i61436b3acf97b945dd99f6f57164949f |
14. | Pores by pillaring: not always a maze. Angew. Chemie Int. Ed. 2008 47 (23) 4262–4263. doi:10.1002/anie.200705755a1809572253496bc12fd711631917186 |
15. | Poly(1-trimethylsilyl-1-propyne)/MFI composite membranes for butane separations. Micropor. Mesopor. Mater. 2008 110 330–338. doi:10.1016/j.micromeso.2007.06.0446148d4d49e879d916d5d0e9d38f285d6 |
2007
16. | Hierarchical nano-manufacturing: from shaped zeolite nanoparticles to high performance separation membranes. Angew. Chemie Int. Ed. 2007 46 (40) 7560–7573. a7ef9eb448a677fe6bce2da4ae1c74d1 |
17. | Germania nanoparticles and nanocrystals at room temperature in water and aqueous lysine sols. Langmuir 2007 doi:10.1021/la702526cac72f919fc5e7674157f8748c1060596 |
18. | Synthesis and thermodynamic properties of poly(cyclohexylethylene-b-dimethylsiloxane-b-cyclohexylethylene). Macromolecules 2007 40 (18) 6638–6646. bfa6bce490e4db54185b501859d21af6 |
19. | Layer-by-layer deposition of barrier and permselective c-oriented-MCM-22/silica composite films. Ind. Eng. Chem. Res. 2007 46 (22) 7096–7106. doi:10.1021/ie0706156757b17da6e135e690b00898cf35b2234 |
20. | Layered silicates by swelling of AMH-3 and nanocomposite membranes. Angew. Chemie Int. Ed. 2007 46 doi:10.1002/anie.200703440d7bc0c9915b6ab56aef169f52e4b5782 |
21. | Aggregative growth of silicalite-1. J. Phys. Chem. B 2007 111 (13) 3398–3403. 697364920171b6f69b61514a57dd020e |
22. | Model of the evoluation of nanoparticles to crystals via an aggregative growth mechanism. Micropor. Mesopor. Mater. 2007 101 97–107. ca94025d11b05f3cc7e8e3433767aab0 |
23. | Silica nanoparticle crystals and ordered coatings using lys-sil and a novel coating device. Langmuir 2007 23 (20) 9924–9928. doi:10.1021/la701063v65ce9e5cc16251e49afef911102af250 |
24. | A model for the performance of microporous mixed matrix. J. Membrane Sci. 2007 295 50–70. doi:10.1016/j.memsci.2007.02.034e07c7ad178eb1f9bfa1c8d4e38b83c78 |
25. | Pure silica large pore zeolite ITQ-7: synthetic strategies, structure-directing effects, and control and nature of structural disorder. Chem. Mater. 2007 19 (7) 1601–1612. 59f597bad67981043be12cfb71911b27 |
26. | Continuous c-oriented AlPO4-5 films by tertiary growth. Chem. Mater. 2007 19 (4) 792–797. doi:10.1021/cm0622295879e42d69f426faa743e1ff752750031 |
2006
27. | MFI zeolite membranes from a- and randomly oriented monolayers. Adsorption 2006 12 (56) 339–360. doi:10.1007/s10450-006-0564-yd8cdf0235761ea9d711843524695d085 |
28. | Potential of mean force for tetramethylammonium binding to cagelike oligosilicates in aqueous solution. J. Am. Chem. Soc. 2006 128 (50) 16138–16147. e1d752c5d73814c4fe7461169e5de77c |
29. | Nanoparticles in lysine--silica sols. Chem. Mater. 2006 18 5814–5816. doi:10.1021/cm061982vbbefdd1106d8432a9cf5737b9bb38ea7 |
30. | Phenylalanine and arginine adsorption in zeolites x, y, and beta. Langmuir 2006 22 (22) 9350–9356. doi:10.1021/la061743m0b9bc08e2a2c9bb8c3305ccf2e43aa39 |
31. | Uniformly a- oriented MFI films by secondary growth. Angew. Chemie Int. Ed. 2006 45 1154–1158. 53459358c69791e054404c0db96ed972 |
32. | Fabrication and characterization of polyimide-zeolite L mixed matrix membranes for gas separations. J. Membrane Sci. 2006 277 (12) 195–202. 63fac999de6ad590d3002588608b2047 |
33. | Preparation and characterization of a poly(imide siloxane) and zeolite L mixed matrix membrane. J. Membrane Sci. 2006 277 (12) 210–218. 9f335949124e2ddda291e96da6438fe2 |
34. | Mechanistic principles of nanoparticle evolution to zeolite crystals. Nature Mater. 2006 5 400–408. doi:10.0000/xxxb9dce7e7fcd57f42c2d0472ff6c27de4 |
35. | Probing cooperative jump-diffusion in zeolites: neutron spinâecho measurements and molecular dynamics simulations of benzene in NaX. Micropor. Mesopor. Mater. 2006 90 (1-3) 303–307. dcbdd972c4ef95cff4138afb59fb6d6a |
36. | Colloidal crystal layers of hexagonal nanoplates by convective assembly. Langmuir 2006 22 (12) 5217–5219. doi:10.1021/la0601206488c1d8376fd91f5c46baa346a3ac723 |
37. | On the role of tetramethylammonium cation and effects of solvent dynamics on the stability of the cage-like silicates Si6O156- and Si8O208- in aqueous solution. A molecular dynamics study. J. Am. Chem. Soc. 2006 128 (2) 596–606. eabd4cc6e58a21e7b1c8076cc9f69173 |
2005
38. | Preparation of b-oriented MFI films on porous stainless steel substrates. Ind. Eng. Chem. Res. 2005 44 (24) 9086–9095. doi:10.1021/ie050668s1096189315140e3924b0a3cbff432bd3 |
39. | Progress in manipulating zeolite morphology and related applications. Current Opinion Colloid Interface Sci. 2005 10 (5-6) 233–238. f62ce1dcf85d1692fa1c4a56cc854b15 |
40. | A mathematical model for crystal growth by aggregation of precursor metastable nanoparticles. J. Phys. Chem. B 2005 109 (50) 23879–23887. 2b3b519f3f624b745adefcb848439fdd |
41. | Strain of MFI crystals in membranes: an in situ synchrotron x-ray study. Micropor. Mesopor. Mater. 2005 84 332–337. doi:10.1016/j.micromeso.2005.05.043bd97f9c685d6c32d6123c810f66f492e |
42. | Molecular dynamics studies on the role of tetramethylammonium cations in the stability of the silica octamers Si8O208- in solution. J. Phys. Chem. B 2005 109 (20) 10429–10434. 48896e7554eac556db7db5bad6c2191b |
43. | Amino acid adsorption on zeolite î². Langmuir 2005 21 (19) 8743–8750. cdbd40d1b4b8fc123f6c6c1ac20176f6 |
44. | Effects of structure directing agents on the external surface structure and morphology of zeolite crystals. Abs. Papers Am. Chem. Soc. 2005 229 U735–u735. af2dc9cef494a4a2e8c692c5555a525e |
45. | Microstructure control of molecular sieve films. Abs. Papers Am. Chem. Soc. 2005 229 U934–u935. 1e8c10ad34085aa1d9cb69884daf9330 |
46. | Translational dynamics of water in a nanoporous layered silicate. Phys. Review B 2005 71 (10) 104301. 5e7ab3049424a794ca868c50cd4ebe6a |
2004
47. | Zeolite (MFI) crystal morphology control using organic structure-directing agents. Chem. Mater. 2004 16 (26) 5697–5705. df0ce7fe7be12ef6ae8cd9530bc74a9d |
48. | Surface structure of zeolite (MFI) crystals. Chem. Mater. 2004 16 (25) 5226–5232. 2f41b4807b94365eedd3310b32730aab |
49. | Beyond lattice models of activated transport in zeolites: high-temperature molecular dynamics of self-diffusion and cooperative diffusion of benzene in NaX. J. Phys. Chem. B 2004 108 (44) 17171–17178. 399609c4fe7a85b576e447e264da02e1 |
50. | Predicting benzene fluxes in NaX membranes from atomistic simulations of cooperative diffusivities. J. Phys. Chem. B 2004 108 (44) 17179–17187. 1c4a62c834f088337e58e4c13fb18a72 |
51. | Fabrication of polymer/selective-flake nanocomposite membranes and their use in gas separation. Chem. Mater. 2004 16 (20) 3838–3845. 4f91d4d6e9623ca53fe8a8659e05f491 |
52. | Methyl rotational tunneling dynamics of p-xylene confined in a crystalline zeolite host. J. Chem. Phys. 2004 121 (10) 4810–4819. 8512c30e6b0cdeb1dbfda3ad5a8fd03b |
53. | Combining simultaneous reflectance and fluorescence imaging with SEM for conclusive identification of polycrystalline features of MFI membranes. Micropor. Mesopor. Mater. 2004 76 (13) 29–33. doi:10.1016/j.micromeso.2004.07.029a7b3d4eadf324ddb29b835b3cada3f7c |
54. | On the TEM and AFM evidence of zeosil nanoslabs present during the synthesis of silicalite-1. Angew. Chemie Int. Ed. 2004 43 (35) 4558–4561. 62c20d34772d237885e8454977ea5627 |
55. | Siliceous ZSM-5 membranes by secondary growth of b-oriented seed layers. Adv. Functional Mater. 2004 14 (7) 716–729. doi:10.1002/adfm.200400040e617e9b187c5181841c21cca460317a7 |
56. | Silicalite-1 crystals with modified morphology: HRTEM imaging and synthesis of b-oriented films. Recent Advances Sci. Tech. Zeolites Related Mater., Pts A - C 2004 154 1160–1167. 9d483bc29c5311f414eeb1af3ad592ee |
57. | Growth mechanisms of silicalite-1. Recent Advances Sci. Tech. Zeolites Related Mater., Pts A - C 2004 154 317–324. e9251cd0657abf04f55ac1b5de62f25f |
58. | Gas and organic vapor permeation through b-oriented MFI membranes. Ind. Eng. Chem. Res. 2004 43 (12) 3000–3007. 30b788ebea2709f1967e9e150c9eeb22 |
59. | Pattern formation in porous media via the liesegang ring mechanism. Ind. Eng. Chem. Res. 2004 43 (12) 3073–3084. 503c79c67ca9f876c6d0b38012460c8d |
60. | Surface structure of silicalite-1 crystals with modified morphology studied by high-resolution transmission electron microscopy. Abs. Papers Am. Chem. Soc. 2004 227 U878–u878. 6d8a6b4006b5fde0a6e94c2772fa9e70 |
61. | Multiscale hybrid modeling of film deposition within porous substrates. AIChE J. 2004 50 (3) 684–695. 91d51453c9b358f3698cf02c62ba563c |
62. | Bifurcation analysis of liesegang ring pattern formation. Phys. Review Lett. 2004 92 (8) 88301. e8ebd774d316591c0acba042b9edf370 |
2003
63. | Structure of the silica phase extracted from silica/(TPA)OH solutions containing nanoparticles. J. Phys. Chem. B 2003 107 (37) 10006–10016. a85e15fdfbd4f1611117df205195ed92 |
64. | Molecular modeling of benzene diffusion in NaX faujasite. Abs. Papers Am. Chem. Soc. 2003 226 U393–u393. d27a58b0cc35aa10eaf4467cc3d7080a |
65. | Separation of close-boiling hydrocarbon mixtures with a microstructually optimized ZSM-5 membrane. Abs. Papers Am. Chem. Soc. 2003 226 U262–u262. a835541d4e385b0b1361c3327363b90a |
66. | Dynamic organization of inorganic nanoparticles into periodic micrometer-scale patterns. Angew. Chemie Int. Ed. 2003 42 (25) 2905–2909. 3492690282dcdbfe6d373372c7dbdc81 |
67. | Physicochemical characterization of silicalite-1 surface and its implications on crystal growth. Langmuir 2003 19 (11) 4619–4626. 9dbb02679e9ff6969bac2b1c4c6b9d91 |
68. | Periodic patterning in materials deposition by self-regulating diffusion-reaction processes. Appl. Phys. Lett. 2003 82 (19) 3357–3359. 2bef6981c153749f391bc98946537079 |
69. | Microstructural optimization of a zeolite membrane for organic vapor separation. Science 2003 300 (5618) 456–460. doi:10.1126/science.1082169ae8e5a8e85233c14d3a3e85d99989ec7 |
70. | Roles of transients and nucleation in film deposition within a support. Ind. Eng. Chem. Res. 2003 42 (7) 1321–1328. d1271d0340fd13880b4f2e665cbabe8f |
71. | Infrared reflectance measurements of zeolite film thickness, refractive index and other characteristics. Micropor. Mesopor. Mater. 2003 58 (2) 81–89. 6315e3dba5d2dd56dc4a28ad3d0588df |
72. | A highly crystalline layered silicate with three-dimensionally microporous layers. Nature Mater. 2003 2 (1) 53–58. 72cc56f6971e54033c4d311f67d34dfb |
2002
73. | Oriented molecular sieve membranes by heteroepitaxial growth. J. Am. Chem. Soc. 2002 124 (44) 12966–12968. f51de391aafa3287e0aa4862605e18d5 |
74. | Preparation and characterization of a glassy fluorinated polyimide zeolite-mixed matrix membrane. Desalination 2002 146 (1-3) 3–9. a719fc71e3435c27f573de832c0cf42e |
75. | Control of self-assembled nanolines of porous manganese oxide. Abs. Papers Am. Chem. Soc. 2002 224 U430–u431. 4d4b8f7be0df0564b311ac81d9e9e893 |
76. | Synthesis of a new open framework cerium silicate and its structure determination by single crystal x-ray diffraction. Chem. Comm. 2002 20 2398–2399. 5a90b473e04e5c038504dcc80866e4df |
77. | Molecular sieves in the nanotechnology era. AIChE J. 2002 48 (4) 654–660. 86216521d0c3c448f300d0225c294d3f |
2001
78. | A study of heat-treatment induced framework contraction in strontium-ETS-4 by powder neutron diffraction and vibrational spectroscopy. J. Am. Chem. Soc. 2001 123 (51) 12781–12790. doi:10.1021/ja011703z3d1d8ca7a5cb0035082139f4a00cdf9f |
79. | Synthesis and structure determination of ETS-4 single crystals. Chem. Mater. 2001 13 (11) 4247–4254. 12980b4565076fbd2b56419a94b0cba5 |
80. | Separation of close-boiling hydrocarbon mixtures by MFI and FAU membranes made by secondary growth. Micropor. Mesopor. Mater. 2001 48 (1-3) 219–228. 4460aa97b917a1464d8b0dbb8feb78d9 |
81. | A titanosilicate molecular sieve with adjustable pores for size-selective adsorption of molecules (vol 412, pg 720, 2001). Nature 2001 413 (6856) 652–652. 8062f253c620bf19e38a5abea4c0f36d |
82. | A titanosilicate molecular sieve with adjustable pores for size-selective adsorption of molecules. Nature 2001 412 (6848) 720–724. faff0a204e6ee06aa64a114c737f498a |
83. | Separation of xylene isomer vapors with oriented MFI membranes made by seeded growth. Ind. Eng. Chem. Res. 2001 40 (2) 544–552. doi:10.1021/ie000613k0baa460cd25686a86a6f1d0837ca9cbf |
84. | Heteroepitaxial growth of a zeolite. Angew. Chemie Int. Ed. 2001 40 (6) eb4fbe0843fcd92d81ff61561174cfaf |
85. | Reactive deposition of metal thin films within porous supports from supercritical fluids. Chem. Mater. 2001 13 (6) 2023–2031. 7230bb192237feb628e40094d3fd66d9 |
86. | The interpretation of x-ray diffraction data for the determination of channel orientation in mesoporous films. Micropor. Mesopor. Mater. 2001 44 639–643. ec83ed66040463550ac508e84a4f4d76 |
87. | Tubular MFI zeolite membranes made by secondary (seeded) growth. Catal. Today 2001 67 (1-3) 101–107. 76df35a6e6a9e5c4d3fb3fa93dbc26aa |
88. | ETS-4 pore contraction: the molecular gate effect. Abs. Papers Am. Chem. Soc. 2001 221 U726–u726. d439b3f88db05dbd3a1a918c147a893c |
89. | Modeling permeation through anisotropic zeolite membranes with nanoscopic defects. J. Membrane Sci. 2001 184 (2) 245–255. fbb1e96161185c6a6d25a448548b6875 |
90. | Growth of a faujasite-type zeolite membrane and its application in the separation of saturated/unsaturated hydrocarbon mixtures. J. Membrane Sci. 2001 184 (2) 209–219. 9987d4cd2f3a56d4082596257df31536 |
91. | The location of o- and m-xylene in silicalite by powder x-ray diffraction (vol 104b, pg 8986, 2000). J. Phys. Chem. B 2001 105 (6) 1276–1276. 7693b07aaace918f1ba580d4be25f979 |
92. | Fluorescence confocal optical microscopy imaging of the grain boundary structure of zeolite MFI membranes made by secondary (seeded) growth. J. Membrane Sci. 2001 182 (1-2) 103–109. doi:10.1016/s0376-7388(00)00549-460793502b922b471646dfa404a5ea41c |
93. | Simulations and experiments on the growth and microstructure of zeolite MFI films and membranes made by secondary growth. Micropor. Mesopor. Mater. 2001 42 (2-3) 191–203. c09ea4a08910318123288c52b84e18a0 |
94. | Organic-functionalized molecular sieves. III. shape selective catalysis. Micropor. Mesopor. Mater. 2001 42 (1) 21–35. aa53278d56eae07d54426416f88a901e |
2000
95. | Structure of strontium ion-exchanged ETS-4 microporous molecular sieves. Chem. Mater. 2000 12 (7) 1857–1865. doi:10.1021/cm9907211159198a706c064c7f1b1df1f04119dfb |
96. | Spontaneous formation of inorganic helical fibers and rings. J. Am. Chem. Soc. 2000 122 (49) 12158–12163. 8722fde8751d93552e9514e287b93cd5 |
97. | Synthesis and characterization of ordered arrays of topological defects in mesoporous silica films. Chem. Mater. 2000 12 (10) 2888–2893. d1244154899c0b0fc86e7b546d0cae61 |
98. | The location of o- and m-xylene in silicalite by powder x-ray diffraction. J. Phys. Chem. B 2000 104 (38) 8982–8988. 21300e3b84ff0f2e91e7dbadba26b3e1 |
99. | Synthesis of ETS-4/TiO2 composite membranes and their pervaporation performance. J. Membrane Sci. 2000 174 (1) 31–42. 9c28afd24cfa8b4f1280791276ebe16f |
100. | Spontaneous formation of periodically patterned deposits by chemical vapor deposition. J. Am. Chem. Soc. 2000 122 (51) 12864–12865. doi:10.1021/ja002228sc1517887853e03d4b2652bd78589bc76 |
101. | Transport properties of alumina-supported MFI membranes made by secondary (seeded) growth. Micropor. Mesopor. Mater. 2000 38 (1) 61–73. 5404664800cf0e9ed5de13d6fe05f9af |
102. | Materials - spontaneous formation of inorganic helices. Nature 2000 405 (6782) 38–38. 0b742c687eed7b55357674c75ae62dc1 |
103. | Zeolite growth by addition of subcolloidal particles: modeling and experimental validation. Chem. Mater. 2000 12 (3) 845–853. 73d2ba5afea58309016fbcbc22a77a73 |
1999
104. | Synthesis of porous CrOx pillared octahedral layered manganese oxide materials. Chem. Mater. 1999 11 (12) 3545–3554. 273f2aea98dd2d8025c6fc518febd455 |
105. | Growth, microstructure, and permeation properties of supported zeolite (MFI) films and membranes prepared by secondary growth. Chem. Eng. Sci. 1999 54 (15-16) 3521–3531. 3a8c3987b6f5c8e66b08b575e981a8e8 |
106. | Modeling of zeolite L crystallization using continuum time monte carlo simulations. J. Chem. Phys. 1999 111 (5) 2143–2150. ac416b25308a4f0d793ca25e72108735 |
107. | Highly oriented mesostructured thin films: shear-induced deposition of optically anisotropic coatings of tungsten oxide surfactant composites. Langmuir 1999 15 (13) 4544–4550. 79d3018c9bda275d6324720fb4662206 |
108. | Zeolite-beta grown epitaxially on SSZ-31 nanofibers. Chem. Comm. 1999 10 921–922. 805b9a99c0900b76e41d25926a34d921 |
109. | Permeation of aromatic isomer vapors through oriented MFI-type membranes made by secondary growth. Chem. Mater. 1999 11 (4) 875–+. 7d1ad82e0e4dd4f6bbbba33b485ab197 |
110. | Synthesis of porous inorganic membranes. MRS Bulletin 1999 24 (3) 30–35. 6f45c7e58562a18a1d2045a8fa195b08 |
111. | Deposition of oriented zeolite A films: in situ and secondary growth. J. Membrane Sci. 1999 152 (1) 41–59. a787acf333de07e24647cc9a9f6614d5 |
1998
112. | Platinum clusters supported in zeolite LTL: influence of catalyst morphology on performance in n-hexane reforming. J. Catal. 1998 179 (2) 565–580. f1096558145ddaff1571c608b71716ed |
113. | Synthesis, characterization, and structure solution of CIT-5, a new, high-silica, extra-large-pore molecular sieve. J. Phys. Chem. B 1998 102 (37) 7139–7147. 7e860b0411e84ad5cb8aecab89df0935 |
114. | On the preferred orientation and microstructural manipulation of molecular sieve films prepared by secondary growth. Chem. Mater. 1998 10 (9) 2497–2504. 85fd294a9970ba7d4bbc9034a2ba5a57 |
115. | Synthesis and characterization of oriented MFI membranes prepared by secondary growth. AIChE J. 1998 44 (8) 1903–1913. 9f07fb02448e61985396b9f6eacef1db |
116. | Modeling of zeolite crystallization: the role of gel microstructure. Micropor. Mesopor. Mater. 1998 21 (46) 337–346. db75f961fb7967b36b8890bf48ba4d0f |
1997
117. | Characterization of the extra-large-pore zeolite UTD-1. J. Am. Chem. Soc. 1997 119 (36) 8474–8484. e51a7cd5871ff653978778acd37509e6 |
118. | A highly oriented thin film of zeolite A. Chem. Mater. 1997 9 (8) 1705+. e8091276cc2f3ba29ff52a085d7108b4 |
119. | Modeling of SiO2 deposition in porous vycor: effects of pore network connectivity. AIChE J. 1997 43 (7) 1849–1860. 8b7edf161d98a26dab1a4fb9a9695d00 |
120. | Preparation of supported mesoporous silica layers in a continuous flow cell. Chem. Mater. 1997 9 (7) 1505+. 100b6999420673b3edb8641b7082b2d2 |
121. | A model for the structure of the large-pore zeolite SSZ-31. J. Am. Chem. Soc. 1997 119 (16) 3732–3744. 85bbc55e453123ba2ad11a51ecb6c65c |
1996
122. | Preferentially oriented submicron silicalite membranes. AIChE J. 1996 42 (11) 3020–3029. 9555bbe752a689018719bc92f47f61e6 |
123. | VPI-8: A high-silica molecular sieve with a novel ''pinwheel'' building unit and its implications for the synthesis of extra-large pore molecular sieves. J. Am. Chem. Soc. 1996 118 (31) 7299–7310. 5d99640c7e97298859f954a48ff55dcf |
124. | Preparation of an asymmetric zeolite L film. Chem. Mater. 1996 8 (8) 1579–1583. 9cef2273cc150940a51df6e4bda4e729 |
125. | A high-silica zeolite with a 14-tetrahedral-atom pore opening. Nature 1996 381 (6580) 295–298. 9f74b7a1ae42630081da2a75a392ca52 |
126. | High-resolution electron microscopy study on the growth of zeolite L nanoclusters. Micropor. Mater. 1996 5 (6) 381–388. 0ff4228ba5b720b207b0e15bdd51157e |
1995
127. | Characterization of zeolite-l nanoclusters. Chem. Mater. 1995 7 (9) 1734–1741. e0a20b9983cb81f9829f7959580af1a6 |
128. | Influence of carrier doping on the interaction of benzene and toluene with supported rhodium. J. Catal. 1995 152 (2) 331–340. 42e65b805b886c05b5705f0d0b7d6135 |
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