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Davis, M. E. (2002). Ordered porous materials for emerging applications. Nature, 417(6891), 813–821.

Authors 1
  1. Mark E. Davis (first)
References 142 Referenced 4,879
  1. Davis, M. E. & Lobo, R. F. Zeolite and molecular sieve synthesis. Chem. Mater. 4, 756–768 (1992) (10.1021/cm00022a005) / Chem. Mater. by ME Davis (1992)
  2. Corma, A. From microporous to mesoporous molecular sieve materials and their use in catalysis. Chem. Rev. 97, 2373–2419 (1997) (10.1021/cr960406n) / Chem. Rev. by A Corma (1997)
  3. Davis, M. E., Saldarriaga, C., Montes, C., Garces, J. & Crowder, C. A molecular sieve with eighteen-membered rings. Nature 331, 698–699 (1988) (10.1038/331698a0) / Nature by ME Davis (1988)
  4. Kresge, C. T., Leonowicz, M. E., Roth, W. J., Vartuli, J. C. & Beck, J. S. Ordered mesoporous molecular sieves synthesized by a liquid-crystal template mechanism. Nature 359, 710–712 (1992) (10.1038/359710a0) / Nature by CT Kresge (1992)
  5. Hoskins, B. F. & Robson, R. Design and construction of a new class of scaffolding-like materials comprising infinite polymeric frameworks of 3-D-linked molecular rods—A reappraisal of the Zn(CN)2 and Cd(CN)2 structures and the synthesis and structure of the diamond-related frameworks [N(CH3)4][CuIZnII(CN)4] and CuI[4,4′,4″,4‴-tetracyanotetra-phenylmethane]BF4.XC6H5NO2 . J. Am. Chem. Soc. 112, 1546–1554 (1990) (10.1021/ja00160a038) / J. Am. Chem. Soc. by BF Hoskins (1990)
  6. Suzuki, H. Composite membrane having a surface layer of an ultrathin film of cage-shaped zeolite and process for production thereof. US Patent 4,699,892 (1987).
  7. Stucky, G. D. & MacDougall, J. E. Quantum confinement and host guest chemistry—Probing a new dimension. Science 247, 669–678 (1990) (10.1126/science.247.4943.669) / Science by GD Stucky (1990)
  8. Davis, M. E. et al. Physicochemical properties of VPI-5. J. Am. Chem. Soc. 111, 3919–3924 (1989) (10.1021/ja00193a024) / J. Am. Chem. Soc. by ME Davis (1989)
  9. Huo, Q. H. et al. Synthesis and characterization of a novel extra large ring of aluminophosphate JDF-20. J. Chem. Soc. Chem. Commun. 875–876 (1992) (10.1039/c39920000875)
  10. Yang, G. Y. & Sevov, S. C. Zinc phosphate with gigantic pores of 24 tetrahedra. J. Am. Chem. Soc. 121, 8389–8390 (1999) (10.1021/ja991985r) / J. Am. Chem. Soc. by GY Yang (1999)
  11. Estermann, M., McCusker, L. B., Baerlocher, Ch., Merrouche, A. & Kessler, H. A synthetic gallophosphate molecular-sieve with a 20-tetrahedral-atom pore opening. Nature 352, 320–323 (1991) (10.1038/352320a0) / Nature by M Estermann (1991)
  12. Kuznicki, S. M. et al. A titanosilicate molecular sieve with tunable pores and its use in gas separation. Nature 412, 720–724 (2001) (10.1038/35089052) / Nature by SM Kuznicki (2001)
  13. Li, H. X. & Davis, M. E. Phosphate-based molecular sieves with pores comprised of greater than 12-rings. Catal. Today 19, 61–106 (1994) (10.1016/0920-5861(94)85004-6) / Catal. Today by HX Li (1994)
  14. Lobo, R. F. et al. Characterization of the extra-large-pore zeolite UTD-1. J. Am. Chem. Soc. 119, 8474–8484 (1997) (10.1021/ja9708528) / J. Am. Chem. Soc. by RF Lobo (1997)
  15. Yoshikawa, M. et al. Synthesis, characterization and structure solution of CIT-5, a new, high-silica, extra-large-pore molecular sieve. J. Phys. Chem. B 102, 7139–7147 (1998) (10.1021/jp982169t) / J. Phys. Chem. B by M Yoshikawa (1998)
  16. Kinoshita, Y., Matsubara, I., Higuchi, T. & Saito, Y. The crystal structure of bis(adiponitrilo)copper (I) nitrate. Bull. Chem. Soc. Jpn 32, 1221–1226 (1959) (10.1246/bcsj.32.1221) / Bull. Chem. Soc. Jpn by Y Kinoshita (1959)
  17. Li, H., Eddaoudi, M., O'Keeffe, M. & Yaghi, O. M. Design and synthesis of an exceptionally stable and highly porous metal-organic framework. Nature 402, 276–279 (1999) (10.1038/46248) / Nature by H Li (1999)
  18. Chen, B., Eddaoudi, M., Hyde, S. T., O'Keeffe, M. & Yaghi, O. M. Interwoven metal-organic framework on a periodic minimal surface with extra-large pores. Science 291, 1021–1023 (2001) (10.1126/science.1056598) / Science by B Chen (2001)
  19. Eddaoudi, M. et al. Systematic design of pore size and functionality in isorecticular MOFs and their application in methane storage. Science 295, 469–472 (2002) (10.1126/science.1067208) / Science by M Eddaoudi (2002)
  20. Seki, K. Design of an adsorbent with an ideal pore structure for methane adsorption using metal complexes. Chem. Commun. 1496–1497 (2001) (10.1039/b104204c)
  21. Jones, C. W., Tsuji, K. & Davis, M. E. Organic-functionalized molecular sieves as shape-selective catalysts. Nature 393, 52–54 (1998) (10.1038/29959) / Nature by CW Jones (1998)
  22. Seo, J. S. et al. A homochiral metal-organic porous material for enantioselective separation and catalysis. Nature 404, 982–986 (2000) (10.1038/35010088) / Nature by JS Seo (2000)
  23. Kepert, C. J., Prior, T. J. & Rosseinsky, M. J. A versatile family of interconvertible microporous chiral molecular frameworks: The first example of ligand control of network chirality. J. Am. Chem. Soc. 122, 5158–5168 (2000) (10.1021/ja993814s) / J. Am. Chem. Soc. by CJ Kepert (2000)
  24. Chen, C. Y., Li, H. X. & Davis, M. E. Studies on mesoporous materials. I. Synthesis and characterization of MCM-41. Microporous Mater. 2, 17–26 (1993) (10.1016/0927-6513(93)80058-3) / Microporous Mater. by CY Chen (1993)
  25. Annen, M. J. & Davis, M. E. Raman and 29Si MAS NMR spectroscopy of framework materials containing three-membered rings. Microporous Mater. 1, 57–65 (1993) (10.1016/0927-6513(93)80008-I) / Microporous Mater. by MJ Annen (1993)
  26. De Man, A. J. M., Ueda, S., Annen, M. J., Davis, M. E. & van Santen, R. A. The stability and vibrational spectra of three-ring containing zeolitic silica polymorphs. Zeolites 12, 789–800 (1992) (10.1016/0144-2449(92)90051-P) / Zeolites by AJM De Man (1992)
  27. Huo, Q. et al. Generalized synthesis of periodic surfactant inorganic composite-materials. Nature 368, 317–321 (1994) (10.1038/368317a0) / Nature by Q Huo (1994)
  28. Inagaki, S., Guan, S., Fukushima, Y., Ohsuna, T. & Terasaki, O. Novel mesoporous materials with a uniform distribution of organic groups and inorganic oxide in their frameworks. J. Am. Chem. Soc. 121, 9611–9614 (1999) (10.1021/ja9916658) / J. Am. Chem. Soc. by S Inagaki (1999)
  29. Attard, G. S. et al. Mesoporous Pt/Ru alloy from the hexagonal lyotropic liquid crystalline phase of a nonionic surfactant. Chem. Mater. 13, 1444–1446 (2001) (10.1021/cm000850d) / Chem. Mater. by GS Attard (2001)
  30. Inagaki, S., Guan, S., Ohsuna, T. & Terasaki, O. Mesoporous organic-silica hybrid with crystal-like pore walls. Nature 416, 304–307 (2002) (10.1038/416304a) / Nature by S Inagaki (2002)
  31. Yanagisawa, T., Shimizu, T., Kuroda, K. & Kato, C. The preparation of alkyltrimethylammonium-kanemite complexes and their conversion to microporous materials. Bull. Chem. Soc. Jpn 63, 988–992 (1990) (10.1246/bcsj.63.988) / Bull. Chem. Soc. Jpn by T Yanagisawa (1990)
  32. Manton, M. R. S. & Davidtz, J. C. Controlled pore sizes and active site spacings determining selectivity in amorphous silica-alumina catalysts. J. Catal. 60, 156–166 (1979) (10.1016/0021-9517(79)90078-2) / J. Catal. by MRS Manton (1979)
  33. Chiola, V., Ritsko, J. E. & Vanderpool, C. D. US Patent 3,556,725 (1971).
  34. Di Renzo, F., Cambon, H. & Dutarte, R. A 28-year-old-synthesis of micelle-templated mesoporous silica. Microporous Mater. 10, 283–286 (1997) (10.1016/S0927-6513(97)00028-X) / Microporous Mater. by F Di Renzo (1997)
  35. Inagaki, S., Fukushima, Y. & Kuroda, K. Synthesis of highly ordered mesoporous materials from a layered polysilicate. J. Chem. Soc. Chem. Commun. 680–682 (1993) (10.1039/c39930000680)
  36. Chen, C. Y., Xiao, S. Q. & Davis, M. E. Studies on ordered mesoporous materials. III. Comparison of MCM-41 to mesoporous materials derived from kanemite. Microporous Mater. 4, 1–20 (1995) (10.1016/0927-6513(94)00077-9) / Microporous Mater. by CY Chen (1995)
  37. Sakamoto, Y. et al. Structure analysis of mesoporous material ‘FSM-16’—Studies by electron microscopy and X-ray diffraction. Microporous Mesoporous Mater. 21, 589–596 (1998) (10.1016/S1387-1811(98)00053-5) / Microporous Mesoporous Mater. by Y Sakamoto (1998)
  38. Kimura, T. et al. Formation of novel ordered mesoporous silicas with square channels and their direct observation by transmission electron microscopy. Angew. Chem. Int. Edn Engl. 39, 3855–3859 (2000) (10.1002/1521-3773(20001103)39:21<3855::AID-ANIE3855>3.0.CO;2-M) / Angew. Chem. Int. Edn Engl. by T Kimura (2000)
  39. Landry, C. C. et al. Phase transformations in mesostructured silica/surfactant composites. Mechanisms for change and applications to materials synthesis. Chem. Mater. 13, 1600–1608 (2001) (10.1021/cm000373z) / Chem. Mater. by CC Landry (2001)
  40. Navrotsky, A., Petrovic, I., Hu, Y., Chen, C. Y. & Davis, M. E. Little energetic limitation to microporous and mesoporous materials. Microporous Mater. 4, 95–98 (1995) (10.1016/0927-6513(94)00082-7) / Microporous Mater. by A Navrotsky (1995)
  41. Davis, M. E., Chen, C. Y., Burkett, S. L. & Lobo, R. L. Synthesis of (alumino)silicate materials using organic molecules and self-assembled organic aggregates as structure-directing agents. Mater. Res. Soc. Symp. Ser. Proc. 346, 831–842 (1994) (10.1557/PROC-346-831) / Mater. Res. Soc. Symp. Ser. Proc. by ME Davis (1994)
  42. Leonowicz, M. E., Lawton, J. A., Lawton, S. L. & Rubin, M. K. MCM-22, a molecular-sieve with 2 independent multidimensional channel systems. Science 264, 1910–1913 (1994) (10.1126/science.264.5167.1910) / Science by ME Leonowicz (1994)
  43. Schreyeck, L., Caullet, P., Mougenel, J. C., Guth, J. L. & Maler, B. A layered microporous aluminosilicate precursor of FER-type zeolite. J. Chem. Soc. Chem. Commun. 2187–2188 (1995) (10.1039/c39950002187)
  44. Brunner, G. O. & Meier, W. M. Framework density distribution of zeolite-type tetrahedral nets. Nature 337, 146–147 (1989) (10.1038/337146a0) / Nature by GO Brunner (1989)
  45. Meier, W. M. Zeolites and zeolite-like materials. Stud. Surf. Sci. Catal. 28, 13–22 (1986) (10.1016/S0167-2991(09)60851-X) / Stud. Surf. Sci. Catal. by WM Meier (1986)
  46. Ueda, S., Koizumi, M., Baerlocher, Ch., McCusker, L. B. & Meier, W. M. 7th Int. Zeolite Conf., Tokyo, Poster Paper 3C-3 (1986).
  47. Davis, M. E. Multidimensional large pores. Nature 337, 117 (1989) (10.1038/337117a0) / Nature by ME Davis (1989)
  48. Annen, M. J., Davis, M. E., Higgins, J. B. & Schlenker, J. L. VPI-7: The first zincosilicate molecular sieve containing three-membered T-atom rings. J. Chem. Soc. Chem. Commun. 1175–1176 (1991) (10.1039/c39910001175)
  49. Annen, M. J., Davis, M. E., Higgins, J. B. & Schlenker, J. L. The physicochemical properties of VPI-7: A microporous zincosilicate with three-membered rings. Mater. Res. Soc. Symp. Ser. Proc. 233, 245–253 (1991) (10.1557/PROC-233-245) / Mater. Res. Soc. Symp. Ser. Proc. by MJ Annen (1991)
  50. Cheetham, A. et al. Very open microporous materials. From concept to reality. Stud. Surf. Sci. Catal. 135, [CD-ROM] Paper 05-O-05 (Elsevier, 2001) (10.1016/S0167-2991(01)81268-4)
  51. Katovic, A. et al. Preparation and characterization of mesoporous molecular sieves containing Al, Fe or Zn. Microporous Mesoporous Mater. 44–45, 275–281 (2001) (10.1016/S1387-1811(01)00193-7) / Microporous Mesoporous Mater. by A Katovic (2001)
  52. Haag, W. O. & Tsikoyiann, J. G. Membrane composed of a pure molecular sieve. US Patent 5,019,263 (1991).
  53. Wang, X. D. et al. Fabrication of hollow zeolite spheres. Chem. Commun. 2161–2162 (2000) (10.1039/b006539k)
  54. Rhodes, K. H., Davis, S. A., Caruso, F., Zhang, B. J. & Mann, S. Hierarchical assembly of zeolite nanoparticles into ordered macroporous monoliths using core-shell building blocks. Chem. Mater. 12, 2832–2834 (2000) (10.1021/cm000438y) / Chem. Mater. by KH Rhodes (2000)
  55. Huang, L. M. et al. Fabrication of ordered porous structures by self-assembly by zeolite nanocrystals. J. Am. Chem. Soc. 122, 3530–3531 (2000) (10.1021/ja994240u) / J. Am. Chem. Soc. by LM Huang (2000)
  56. Wang, H., Huang, L., Wang, Z., Mitra, A. & Yan, Y. Hierarchical zeolite structures with designed shape by gel-casting of colloidal nanocrystal suspensions. Chem. Commun. 1364–1365 (2001) (10.1039/b104275k)
  57. Tsapatsis, M., Okubo, T., Lovallo, M. & Davis, M. E. Synthesis and structure of ultrafine zeolite KL (LTL) crystallites and their use for thin film zeolite processing. Mater. Res. Soc. Symp. Ser. Proc. 371, 21–26 (1995) (10.1557/PROC-371-21) / Mater. Res. Soc. Symp. Ser. Proc. by M Tsapatsis (1995)
  58. Shimizu, S. & Hamada, H. Direct conversion of bulk materials into MFI zeolites by a bulk-material dissolution technique. Adv. Mater. 12, 1332–1335 (2000) (10.1002/1521-4095(200009)12:18<1332::AID-ADMA1332>3.0.CO;2-Y) / Adv. Mater. by S Shimizu (2000)
  59. Anderson, M. W., Holmes, S. M., Hanif, N. & Cundy, C. S. Hierarchical pore structures through diatom zeolitization. Angew. Chem. Int. Edn Engl. 39, 2707–2710 (2000) (10.1002/1521-3773(20000804)39:15<2707::AID-ANIE2707>3.0.CO;2-M) / Angew. Chem. Int. Edn Engl. by MW Anderson (2000)
  60. Schacht, S., Huo, Q., Voigt-Martin, I. G., Stucky, G. D. & Schüth, F. Oil-water interface templating of mesoporous macroscale structures. Science 273, 768–771 (1996) (10.1126/science.273.5276.768) / Science by S Schacht (1996)
  61. Bruinsma, P. J., Kim, A. Y., Liu, J. & Baskaran, S. Mesoporous silica synthesized by solvent evaporation: Spun fibers and spray-dried hollow spheres. Chem. Mater. 9, 2507–2512 (1997) (10.1021/cm970282a) / Chem. Mater. by PJ Bruinsma (1997)
  62. Velev, O. D., Jede, T. A., Lobo, R. F. & Lenhoff, A. M. Porous silica via colloidal crystallization. Nature 389, 447–448 (1997) (10.1038/38921) / Nature by OD Velev (1997)
  63. Stein, A. Sphere templating methods for periodic porous solids. Microporous Mesoporous Mater. 44–45, 227–239 (2001) (10.1016/S1387-1811(01)00189-5) / Microporous Mesoporous Mater. by A Stein (2001)
  64. Bein, T. Synthesis and applications of molecular sieve layers and membranes. Chem. Mater. 8, 1636–1653 (1996) (10.1021/cm960148a) / Chem. Mater. by T Bein (1996)
  65. Yan, Y. & Bein, T. Molecular sieve sensors for selective ethanol detection. Chem. Mater. 4, 975–977 (1992) (10.1021/cm00023a007) / Chem. Mater. by Y Yan (1992)
  66. Feng, S. & Bein, T. Growth of oriented molecular-sieve crystals on organophosphanate films. Nature 368, 834–836 (1994) (10.1038/368834a0) / Nature by S Feng (1994)
  67. Feng, S. & Bein, T. Vertical aluminophosphate molecular-sieve crystals grown at inorganic-organic interfaces. Science 265, 1839–1841 (1994) (10.1126/science.265.5180.1839) / Science by S Feng (1994)
  68. Mintova, S., Mo, S. Y. & Bein, T. Humidity sensing with ultrathin LTA-type molecular sieve films grown on piezoelectric devices. Chem. Mater. 13, 901–905 (2001) (10.1021/cm000671w) / Chem. Mater. by S Mintova (2001)
  69. Wu, C. N., Chao, K. J., Tsai, T. G., Chiou, Y. H. & Shih, H. C. Oriented growth of molecular sieves on inorganic membranes. Adv. Mater. 8, 1008–1012 (1996) (10.1002/adma.19960081215) / Adv. Mater. by CN Wu (1996)
  70. Scandella, L., Binder, G., Gobrecht, J. & Jansen, J. C. Alignment of single-crystal zeolites by means of microstructured surfaces. Adv. Mater. 8, 137–139 (1996) (10.1002/adma.19960080206) / Adv. Mater. by L Scandella (1996)
  71. Caro, J. et al. Aligned molecular-sieve crystals. Adv. Mater. 4, 273–276 (1992) (10.1002/adma.19920040405) / Adv. Mater. by J Caro (1992)
  72. Okubo, T. et al. Heteroepitaxial growth of a zeolite. Angew. Chem. Int. Edn Engl. 40, 1069–1071 (2001) (10.1002/1521-3773(20010316)40:6<1069::AID-ANIE10690>3.0.CO;2-W) / Angew. Chem. Int. Edn Engl. by T Okubo (2001)
  73. Wakihara, T. et al. Heteroepitaxial connection of zeolites with different pore structures. Stud. Surf. Sci. Catal. 135, [CD-ROM] Paper 02-P-28 (Elsevier, 2001) (10.1016/S0167-2991(01)81367-7)
  74. Sun, J. T., Dartt, C. B. & Davis, M. E. Molecular sieve coated SAW device for the detection of carbon dioxide in the presence of water. Mater. Res. Soc. Symp. Ser. Proc. 360, 359–366 (1995) (10.1557/PROC-360-359) / Mater. Res. Soc. Symp. Ser. Proc. by JT Sun (1995)
  75. Wang, Z. B., Wang, H. T., Mitra, A., Huang, L. M. & Yan, Y. S. Pure-silica zeolite low-k dielectric thin films. Adv. Mater. 13, 746–749 (2001) (10.1002/1521-4095(200105)13:10<746::AID-ADMA746>3.0.CO;2-J) / Adv. Mater. by ZB Wang (2001)
  76. Geus, E. R., van Bekkum, H., Bakker, W. J. W. & Moulijn, J. A. High-temperature stainless steel supported zeolite (MFI) membranes: Preparation, module construction and permeation experiments. Microporous Mater. 1, 131–147 (1993) (10.1016/0927-6513(93)80019-Q) / Microporous Mater. by ER Geus (1993)
  77. Jia, M. D., Peinemann, K. V. & Behling, R. D. Ceramic zeolite composite membranes. Preparation, characterization and gas permeation. J. Membr. Sci. 82, 15–26 (1993) (10.1016/0376-7388(93)85089-F) / J. Membr. Sci. by MD Jia (1993)
  78. Jia, M. D., Chen, B., Noble, R. D. & Falconer, J. Ceramic-zeolite composite membranes and their application for separation of vapor/gas mixtures. J. Membr. Sci. 90, 1–10 (1994) (10.1016/0376-7388(94)80029-4) / J. Membr. Sci. by MD Jia (1994)
  79. Matsukata, M., Nishiyama, N. & Ueyama, K. Zeolitic membrane synthesized on a porous alumina support. J. Chem. Soc. Chem. Commun. 339–340 (1994) (10.1039/c39940000339)
  80. Yan, Y. H., Tsapatsis, M., Gavalas, G. R. & Davis, M. E. Zeolite ZSM-5 membrane grown on porous α-Al2O3 . J. Chem. Soc. Chem. Commun. 227–228 (1995) (10.1039/C39950000227)
  81. Vroon, Z. A. E. P., Keizer, K., Gilde, M. J., Verweij, H. & Burggraaf, A. J. Transport properties of alkanes through ceramic thin zeolite MFI membranes. J. Membr. Sci. 113, 293–300 (1996) (10.1016/0376-7388(95)00128-X) / J. Membr. Sci. by ZAEP Vroon (1996)
  82. Lovallo, M. C. & Tsapatsis, M. Preferentially oriented sub-micron silicalite membranes. AIChE J. 42, 3020–3029 (1996) (10.1002/aic.690421104) / AIChE J. by MC Lovallo (1996)
  83. Boudreau, L. & Tsapatsis, M. A highly oriented thin film of zeolite A. Chem. Mater. 9, 1705–1709 (1997) (10.1021/cm970151+) / Chem. Mater. by L Boudreau (1997)
  84. Balkus, K. J. Jr, Muñoz, T. & Gimon-Kinsel, M. E. Preparation of zeolite UTD-1 films by pulsed laser ablation: Evidence for oriented crystal growth. Chem. Mater. 10, 464–466 (1998) (10.1021/cm970684i) / Chem. Mater. by KJ Balkus Jr (1998)
  85. Wang, Z. B. & Yan, Y. S. Controlling crystal orientation in zeolite MFI thin films by direct in situ crystallization. Chem. Mater. 13, 1101–1107 (2001) (10.1021/cm000849e) / Chem. Mater. by ZB Wang (2001)
  86. Xomeritakis, G., Lai, Z. P. & Tsapatsis, M. Separation of xylene isomer vapors with oriented MFI membranes made by seeded growth. Ind. Eng. Chem. Res. 40, 544–552 (2001) (10.1021/ie000613k) / Ind. Eng. Chem. Res. by G Xomeritakis (2001)
  87. Zhao, D. Y. et al. Continuous mesoporous silica films with highly ordered large pore structures. Adv. Mater. 10, 1380–1385 (1998) (10.1002/(SICI)1521-4095(199811)10:16<1380::AID-ADMA1380>3.0.CO;2-8) / Adv. Mater. by DY Zhao (1998)
  88. Yang, C. M. et al. Spin-on mesoporous silica films with ultralow dielectric constants, ordered pore structures, and hydrophobic surfaces. Adv. Mater. 13, 1089–1102 (2001) / Adv. Mater. by CM Yang (2001)
  89. Liu, J. et al. Mesoporous silica film from a solution containing a surfactant and methods of making same. US Patent 6,329,017 (2001).
  90. Wirnsberger, G., Scott, B. J. & Stucky, G. D. pH sensing with mesoporous thin films. Chem. Commun. 119–120 (2001) (10.1039/b003995k)
  91. Fan, H. Y. et al. Rapid prototyping of patterned functional nanostructures. Nature 405, 56–60 (2000) (10.1038/35011026) / Nature by HY Fan (2000)
  92. Lu, Y. F. et al. Evaporation-induced self-assembly of hybrid bridged silsesquixoane film and particulate mesophases with internal organic functionality. J. Am. Chem. Soc. 122, 5258–5261 (2000) (10.1021/ja9935862) / J. Am. Chem. Soc. by YF Lu (2000)
  93. Baskaran, S. et al. Low dielectric constant mesoporous silica films through molecularly templated synthesis. Adv. Mater. 12, 291–294 (2000) (10.1002/(SICI)1521-4095(200002)12:4<291::AID-ADMA291>3.0.CO;2-P) / Adv. Mater. by S Baskaran (2000)
  94. Doshi, D. A. et al. Optically defined multifunctional patterning of photosensitive thin-film silica mesophases. Science 290, 107–111 (2000) (10.1126/science.290.5489.107) / Science by DA Doshi (2000)
  95. Tolbert, S. H., Firouzi, A., Stucky, G. D. & Chmelka, B. F. Magnetic field alignment of ordered silicate-surfactant composites and mesoporous silica. Science 278, 264–268 (1997) (10.1126/science.278.5336.264) / Science by SH Tolbert (1997)
  96. Hillhouse, H. W., Okubo, T., van Egmond, J. W. & Tsapatsis, M. Preparation of supported mesoporous silica layers in a continuous flow cell. Chem. Mater. 9, 1505–1507 (1997) (10.1021/cm970140g) / Chem. Mater. by HW Hillhouse (1997)
  97. Grün, M., Kurganov, A. A., Schacht, S., Schüth, F. & Unger, K. K. Comparison of an ordered mesoporous aluminosilicate, silica, alumina, titania and zirconia in normal-phase high-performance liquid chromatography. J. Chromatogr. A 740, 1–9 (1996) (10.1016/0021-9673(96)00205-1) / J. Chromatogr. A by M Grün (1996)
  98. Thoelen, C., van de Walle, K., Vankelecom, I. F. J. & Jacobs, P. J. The use of M41S materials in chiral HPLC. Chem. Commun. 1841–1842 (1999) (10.1039/a904487f)
  99. Sierra, L., Lopez, B., Ramirez, A. & Guth, J. L. Evaluation of mesoporous silicas as stationary phases for high performance liquid chromatography (HPLC). Stud. Surf. Sci. Catal. 135, [CD ROM] Paper 18-P-06 (Elsevier, 2001) (10.1016/S0167-2991(01)81461-0)
  100. Miller, R. D. In search of low-k dielectrics. Science 286, 421–423 (1999) (10.1126/science.286.5439.421) / Science by RD Miller (1999)
  101. McCoy, M. Completing the circuit. Chem. Eng. News 78, 13–24 (2000) / Chem. Eng. News by M McCoy (2000)
  102. Wang, Z., Wang, H., Mitra, A., Huang, L. & Yan, Y. Pure-silica zeolite low-k dielectric thin film by spin-on process. Stud. Surf. Sci. Catal. 135, [CD-ROM] Paper 20-P-11 (Elsevier, 2001) (10.1016/S0167-2991(01)81650-5)
  103. Lauffer, R. B. Paramagnetic metal complexes as water protein relaxation agents for NMR imaging: Theory and design. Chem. Rev. 87, 901–927 (1987) (10.1021/cr00081a003) / Chem. Rev. by RB Lauffer (1987)
  104. Cacheris, W. P., Quay, S. C. & Rocklage, S. M. The relationship between thermodynamics and the toxicity of gadolinium complexes. Magn. Reson. Imaging 8, 467–481 (1990) (10.1016/0730-725X(90)90055-7) / Magn. Reson. Imaging by WP Cacheris (1990)
  105. Balkus, K. J. Jr, Sherry, A. D. & Young, S. W. Zeolite-enclosed transition and rare earth metal ions as contrast agents for the gastrointestinal tract. US Patent 5,122,363 (1992).
  106. Balkus, K. J. Jr, Bresinska, I., Kowalak, S. & Young, S. W. The application of molecular sieves as magnetic resonance image contrast agents. Mater. Res. Soc. Symp. Ser. Proc. 223, 225–230 (1991) (10.1557/PROC-233-225) / Mater. Res. Soc. Symp. Ser. Proc. by KJ Balkus Jr (1991)
  107. Balkus, K. J. Jr & Shi, J. Studies of gadolinium (III)-modified hectorite clays as potential oral MRI contrast agents. J. Phys. Chem. 100, 16429–16434 (1996) (10.1021/jp961478l) / J. Phys. Chem. by KJ Balkus Jr (1996)
  108. Balkus, K. J. Jr & Shi, J. A study of suspended agents for gadolinium (III)-exchanged hetorite. An oral magnetic resonance imaging contrast agent. Langmuir 12, 6277–6281 (1996) (10.1021/la9605100) / Langmuir by KJ Balkus Jr (1996)
  109. Vietze, U. et al. Zeolite-dye microlasers. Phys. Rev. Lett. 81, 4628–4631 (1998) (10.1103/PhysRevLett.81.4628) / Phys. Rev. Lett. by U Vietze (1998)
  110. Ihlein, G., Schüth, F., Krauss, O., Vietze, U. & Laeri, F. Alignment of a laser dye in the channels of the AlPO4-5 molecular sieve. Adv. Mater. 10, 1117–1119 (1998) (10.1002/(SICI)1521-4095(199810)10:14<1117::AID-ADMA1117>3.0.CO;2-W) / Adv. Mater. by G Ihlein (1998)
  111. Weiß, O., Schüth, F., Benmohammadi, L. & Laeri, F. Potential microlasers based on AlPO4-5/DCM composites. Stud. Surf. Sci. Catal. 135, [CD-ROM] Paper 21-O-04 (Elsevier, 2001) (10.1016/S0167-2991(01)81277-5)
  112. Yang, P. et al. Mirrorless lasing from mesostructured wave guides patterned by soft lithography. Science 287, 465–467 (2000) (10.1126/science.287.5452.465) / Science by P Yang (2000)
  113. Wirnsberger, G. & Stucky, G. D. Microring lasing from dye-doped silica/block copolymer nanocomposites. Chem. Mater. 12, 2525–2527 (2000) (10.1021/cm001078h) / Chem. Mater. by G Wirnsberger (2000)
  114. Wada, Y. et al. High efficiency near-IR emission of Nd(III) based low-vibrational environment in cages of nanosized zeolites. J. Am. Chem. Soc. 122, 8583–8584 (2000) (10.1021/ja0020557) / J. Am. Chem. Soc. by Y Wada (2000)
  115. Enzel, P. & Bein, T. Poly(acrylonitrile) chains in zeolite channels—Polymerization and pyrolysis. Chem. Mater. 4, 819–824 (1992) (10.1021/cm00022a014) / Chem. Mater. by P Enzel (1992)
  116. Kyotani, T., Nagai, T., Inoue, S. & Tomita, A. Formation of new type of porous carbon by carbonization in zeolite nanochannels. Chem. Mater. 9, 609–615 (1997) (10.1021/cm960430h) / Chem. Mater. by T Kyotani (1997)
  117. Ma, Z., Kyotani, T., Liu, Z., Terasaki, O. & Tomita, A. Very high surface area microporous carbon with a three-dimensional nano-array structure: synthesis and its molecular structure. Chem. Mater. 13, 4413–4415 (2001) (10.1021/cm010730l) / Chem. Mater. by Z Ma (2001)
  118. Johnson, S. A., Brigham, E. S., Olliver, P. J. & Mallouk, T. E. Effect of micropore topology on the structure and properties of zeolite polymer replicas. Chem. Mater. 9, 2448–2458 (1997) (10.1021/cm9703278) / Chem. Mater. by SA Johnson (1997)
  119. Ryoo, R., Joo, S. H. & Jun, J. Synthesis of highly ordered carbon molecular sieves via template-mediated structural transformation. J. Phys. Chem. B 103, 7743–7746 (1999) (10.1021/jp991673a) / J. Phys. Chem. B by R Ryoo (1999)
  120. Lee, J. W., Yoon, S. H., Hyeon, T. H., Oh, S. M. & Kim, K. B. Synthesis of new mesoporous carbon and its application to electrochemical double-layer capacitors. Chem. Commun. 2177–2178 (1999) (10.1039/a906872d)
  121. Kruk, M., Jaroniec, M., Ryoo, R. & Joo, S. H. Characterization of ordered mesoporous carbons synthesized using MCM-48 silicas as templates. J. Phys. Chem. B 104, 7960–7968 (2000) (10.1021/jp000861u) / J. Phys. Chem. B by M Kruk (2000)
  122. Yoon, S. B., Kim, J. Y. & Yu, J. S. Synthesis of highly ordered nanoporous carbon molecular sieves from silylated MCM-48 using divinyl benzene as precursor. Chem. Commun. 559–560 (2001) (10.1039/b009691l)
  123. Joo, S. H. et al. Ordered nanoporous arrays of carbon supporting high dispersions of platinum nanoparticles. Nature 412, 169–172 (2001) (10.1038/35084046) / Nature by SH Joo (2001)
  124. Wang, N., Tang, Z. K., Li, G. D. & Chen, J. S. Single-walled 4 Å carbon nanotube arrays. Nature 408, 50–51 (2000) (10.1038/35040702) / Nature by N Wang (2000)
  125. Tang, Z. K. et al. Superconductivity in 4 Å single-walled carbon nanotubes. Science 292, 2462–2465 (2001) (10.1126/science.1060470) / Science by ZK Tang (2001)
  126. Dagani, R. Littlest carbon nanotube debuts. Chem. Eng. News 78, 9–10 (2000) / Chem. Eng. News by R Dagani (2000)
  127. Wilson, E. Superconducting nanotubes. Chem. Eng. News 79, 8 (2001) / Chem. Eng. News by E Wilson (2001)
  128. Davis, M. E. Evolution of extra-large pore materials. Stud. Surf. Sci. Catal. 135, 29–36 (2001) (10.1016/S0167-2991(01)81184-8) / Stud. Surf. Sci. Catal. by ME Davis (2001)
  129. Bull, I. et al. Imposition of polarity on a centrosymmetric zeolite host: The effect of fluoride ions on template ordering in zeolite IFR. J. Am. Chem. Soc. 122, 7128–7129 (2000) (10.1021/ja000885e) / J. Am. Chem. Soc. by I Bull (2000)
  130. Corma, A., Nemeth, L. T., Renz, M. & Valencia, S. Sn-zeolite beta as a heterogeneous chemoselective catalyst for Baeyer-Villiger oxidations. Nature 412, 423–425 (2001) (10.1038/35086546) / Nature by A Corma (2001)
  131. Dessau, R. M., Schlenker, J. L. & Higgins, J. B. Framework topology of AlPO4-8—The first 14-ring molecular-sieve. Zeolites 10, 522–524 (1990) (10.1016/S0144-2449(05)80306-9) / Zeolites by RM Dessau (1990)
  132. Vogt, E. T. C. & Richardson, J. W. The reversible transition of the molecular-sieve VPI-5 into AlPO4-8 and the structure of AlPO4-8. J. Solid State Chem. 87, 469–471 (1990) (10.1016/0022-4596(90)90052-Y) / J. Solid State Chem. by ETC Vogt (1990)
  133. Loiseau, T. & Ferey, G. Oxyfluorinated microporous compounds. 7. Synthesis and crystal structure of ULM-5, a new fluorinated gallophosphate Ga16(PO4)14(HPO4)2(OH)2F7, [H3N(CH2)6NH3]4, 6 H2O with 16-membered rings and both bonding and encapsulated F-. J. Solid State Chem. 111, 403–415 (1994) (10.1006/jssc.1994.1246) / J. Solid State Chem. by T Loiseau (1994)
  134. Loiseau, T. & Ferey, G. Synthesis and crystal structure of ULM-16, a new open framework fluorinated gallium phosphate with 16-ring channels. Mater. Res. Soc. Symp. Ser. Proc. 431, 27–38 (1996) (10.1557/PROC-431-27) / Mater. Res. Soc. Symp. Ser. Proc. by T Loiseau (1996)
  135. Zhou, Y. et al. A large 24-membered-ring germanate zeolite-type open-framework structure with three-dimensional intersecting channels. Angew. Chem. Int. Edn Engl. 40, 2166–2168 (2001) (10.1002/1521-3773(20010601)40:11<2166::AID-ANIE2166>3.0.CO;2-C) / Angew. Chem. Int. Edn Engl. by Y Zhou (2001)
  136. Lin, C. H., Wang, S. L. & Lii, K. H. [Ga2(DETA)(PO4)2] • (2H2O (DETA = diethylenetriamine): a novel porous gallium phosphate containing 24-ring channels. J. Am. Chem. Soc. 123, 4649–4650 (2001) (10.1021/ja0100468) / J. Am. Chem. Soc. by CH Lin (2001)
  137. Rohrig, C. & Gies, H. A new zincosilicate zeolite with 9-ring channels. Angew. Chem. Int. Edn Engl. 34, 63–65 (1995) (10.1002/anie.199500631) / Angew. Chem. Int. Edn Engl. by C Rohrig (1995)
  138. McCusker, L., Grosse-Kunstleve, R. W., Baerlocher, Ch., Yoshikawa, M. & Davis, M. E. Synthesis optimization and structure analysis of the zincosilicate molecular sieve VPI-9. Microporous Mater. 6, 295–309 (1996) (10.1016/0927-6513(96)00015-6) / Microporous Mater. by L McCusker (1996)
  139. Grosse-Kunstleve, R. W. Zeolite Structure Determination From Powder Data: Computer-based Incorporation of Crystal Chemical Information. PhD thesis, Swiss Federal Inst. Technol., Zürich (1996) / Zeolite Structure Determination From Powder Data: Computer-based Incorporation of Crystal Chemical Information by RW Grosse-Kunstleve (1996)
  140. Park, S. H., Daniels, P. & Gies, H. RUB-23: A new microporous lithosilicate containing spiro-5 building units. Microporous Mesoporous Mater. 37, 129–143 (2000) (10.1016/S1387-1811(99)00260-7) / Microporous Mesoporous Mater. by SH Park (2000)
  141. Park, S. H., Parise, J. B. & Gies, H. Optimized synthesis and structural properties of lithosilicate RUB-29. Stud. Surf. Sci. Catal. 135, [CD-ROM] Paper 09-O-05 (Elsevier, 2001) (10.1016/S0167-2991(01)81288-X)
  142. Li, H., Eddaoudi, M., Plevert, J., O'Keeffe, M. & Yaghi, O. M. Ge2ZrO6F2•(H2DAB)H2): A 4-connected microporous material with “bowtie” building units and an exceptional proportion of 3-rings. J. Am. Chem. Soc. 122, 12409–12410 (2000) (10.1021/ja003228v) / J. Am. Chem. Soc. by H Li (2000)
Dates
Type When
Created 23 years ago (July 28, 2002, 5:36 p.m.)
Deposited 2 years, 3 months ago (May 18, 2023, 2:07 p.m.)
Indexed 4 hours, 19 minutes ago (Aug. 23, 2025, 9:50 p.m.)
Issued 23 years, 2 months ago (June 1, 2002)
Published 23 years, 2 months ago (June 1, 2002)
Published Print 23 years, 2 months ago (June 1, 2002)
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@article{Davis_2002, title={Ordered porous materials for emerging applications}, volume={417}, ISSN={1476-4687}, url={http://dx.doi.org/10.1038/nature00785}, DOI={10.1038/nature00785}, number={6891}, journal={Nature}, publisher={Springer Science and Business Media LLC}, author={Davis, Mark E.}, year={2002}, month=jun, pages={813–821} }