[1]
M. Ogawa: J. Am. Chem. Soc. Vol. 116 (1994), p.7941.
Google Scholar
[2]
H. Yang, A. Kuperman, N. Coombs, S. Mamiche-Afara and G. A. Ozin: Nature vol. 379 (1996), p.703.
DOI: 10.1038/379703a0
Google Scholar
[3]
G. Soler-Illia, C. Sanchez, B. Lebeau and J. Patarin : Chem. Rev. Vol. 102 (2002), p.4093.
Google Scholar
[4]
See the Special Issue of Chemistry of Materials dedicated to Hybrid Organic-Inorganic Materials, (2005).
Google Scholar
[5]
C. J. Brinker, Y. Lu, A. Sellinger and H. Fan: Adv. Mater. vol. 11 (1999), p.579.
Google Scholar
[6]
G. J. A. A. Soler-Illia, E. L. Crepaldi, D. Grosso and C. Sanchez, Curr. Opin. Coll. Interf. Sci.: Vol. 8 (2003), p.109.
Google Scholar
[7]
M. Antonietti and G.A. Ozin: Chem. - A Europ. J., Vol. 10 (2004), p.29.
Google Scholar
[8]
G. J. A. A. Soler-Illia and P. Innocenzi: Chem. Euro. J., Vol. 12 (2006), 4478.
Google Scholar
[9]
J. L. Shi, Z. L. Hua and L. X. Zhang: J. Mater. Chem, Vol. 14 (2004), p.795.
Google Scholar
[10]
L. Nicole, C. Boissiere, D. Grosso, A. Quach and C. Sanchez: J. Mater. Chem. Vol. 15 (2005) p.3598.
Google Scholar
[11]
S. Besson, T. Gacoin, C. Ricolleau, C. Jacquiod, J.P. Boilot: Nano Letters Vol. 2 (2002) p.409.
DOI: 10.1021/nl015685v
Google Scholar
[12]
M. D. Pérez, E. Otal, S. Aldabe-Bilmes, G.J.A.A. Soler-Illia, E. L. Crepaldi, D. Grosso and C. Sanchez: Langmuir, Vol. 20 (2004) p.6879.
DOI: 10.1021/la0497898
Google Scholar
[13]
D. Grosso, F. Cagnol, G. J. A. A. Soler-Illia, E. L. Crepaldi, H. Amenitsch, A. BrunetBruneau, A. Bourgeois and C. Sanchez: Adv. Funct. Mater., Vol. 14 (2004), p.309.
DOI: 10.1002/adfm.200305036
Google Scholar
[14]
G.J.A.A. Soler-Illia, E. Scolan, A. Louis, P. -A. Albouy, and C. Sanchez: New J. Chem., Vol. 25 (2001), 156.
Google Scholar
[15]
E. L. Crepaldi, G.J.A.A. Soler-Illia, D. Grosso, F. Ribot, F. Cagnol and C. Sanchez: J. Am. Chem. Soc., Vol. 125 (2003), p.9770.
DOI: 10.1021/ja030070g
Google Scholar
[16]
(a)M. Ogawa and N. Masukawa: Microp. Mesop. Mater. Vol. 38 (2000), p.35. (b) D.A. Doshi, A. Gibaud, V. Goletto, M.C. Lu, H. Gerung, B. Ocko, S.M. Han and C.J. Brinker: J. Am. Chem. Soc. Vol. 125 (2003), p.11646.
DOI: 10.1021/ja0295523
Google Scholar
[17]
Y.F. Lu, R. Ganguli, C.A. Drewien, M.T. Anderson, C.J. Brinker, W.L. Gong, Y. X. Guo, H. Soyez, B. Dunn, M.H. Huang and J.I. Zink: Nature Vol. 389 (1997), p.364.
DOI: 10.1038/38699
Google Scholar
[18]
P. Falcaro, D. Grosso, H. Amenitsch and P. Innocenzi: J. Phys. Chem. B, Vol. 108 (2004), p.10942.
Google Scholar
[19]
R. C. Hayward, P.C.A. Alberius, E.J. Kramer and B.F. Chmelka: Langmuir, Vol. 20 (2004), p.5998.
Google Scholar
[20]
P. Falcaro, S. Costacurta, G. Mattei, H. Amenitsch, A. Marcelli, M. Cestelli Guidi, M. Piccinini, A. Nucara, L. Malfatti, T. Kidchob and P. Innocenzi: J. Am. Chem. Soc., Vol. 127 (2005), p.3838.
DOI: 10.1021/ja0427956
Google Scholar
[21]
F. Cagnol, D. Grosso, G.J.A.A. Soler-Illia, E. L. Crepaldi, H. Amenitsch and C. Sanchez: J. Mater. Chem., Vol. 13 (2003), p.61.
Google Scholar
[22]
L. Malfatti, T. Kidchob, S. Costacurta, P. Falcaro, P. Schiavuta, H. Amenitsch, P. Innocenzi, Chem. Mater., Vol. 18 (2006), 4560.
DOI: 10.1021/cm060236n
Google Scholar
[23]
D. Grosso, C. Boissière, B. Smarsly, T. Brezesinski, N. Pinna, P. -A. Albouy, H. Amenitsch, M. Antonietti and C Sanchez: Nature Mat. Vol. 3 (2004), 7p. 87.
DOI: 10.1038/nmat1206
Google Scholar
[24]
N. Hedin, R. Graf, S.C. Christiansen, C. Gervais, R.C. Hayward, J. Eckert and B.F. Chmelka: J. Am. Chem. Soc. Vol. 126 (2004), 9425.
DOI: 10.1021/ja040030s
Google Scholar
[25]
H.Y. Fan, C. Hartshorn, T. Buchheit, D. Tallant, R. Assink, R. Simpson, D.J. Kisse, D.J. Lacks, S. Torquato, C.J. Brinker: Nature Mater. Vol. 6 (2007), p.418.
DOI: 10.1038/nmat1913
Google Scholar
[26]
S. Inagaki, S. Guan, T. Ohsuna and O. Terasaki: Nature, Vol. 416 (2002), p.304.
Google Scholar
[27]
M. Klotz, P.A. Albouy, A. Ayral, C. Menager, D. Grosso, A. Vander Lee, V. Cabuil, F. Babonneau and C. Guizard: Chem. Mater., Vol. 12 (2000), p.1721.
DOI: 10.1021/cm991198t
Google Scholar
[28]
H. Miyata, T. Suzuki, A. Fukuoka, T. Sawada, M. Watanabe, T. Noma, K. Takada, T. Mukaide and K. Kuroda: Nat. Mater. Vol. 3 (2004), p.651.
DOI: 10.1038/nmat1184
Google Scholar
[29]
An example of program for fitting is FIT2D available at: www. esrf. fr/computing/expg/subgroups/dataanalysis/FIT2D/index. html.
Google Scholar
[30]
(a) See the CMPR program: www. ncnr. nist. gov/programs/crystallography/software/cmpr (b) M. P. Tate, V. N. Urade, J. D. Kowalski, T. C. Wei, B. D. Hamilton, B. W. Eggiman and H. W. Hillhouse: J. Phys. Chem. B, Vol. 110 (2006) p.9882.
Google Scholar
[31]
(a) C. Boissière, D. Grosso, S. Lepoutre, L. Nicole, A. Brunet-Bruneau and C. Sanchez: Langmuir, Vol. 21 (2005).
Google Scholar
[32]
N. G. Liu, R. A. Assink and C. J. Brinker: Chem. Commun. (2003) p.370.
Google Scholar
[33]
a) S. Dourdain, J. F. Bardeau, M. Colas, B. Smarsly, A. Mehdi, B. M. Ocko and A. Gibaud: Appl. Phys. Lett. (2005) p.86. b) S. Dourdain and A. Gibaud: Appl. Phys. Lett. Vol. 87 (2005), p.223105.
DOI: 10.1063/1.1887821
Google Scholar
[34]
(a) D. Konjhodzic, H. Bretinger and F. Marlow, Thin solid Films, Vol. 495 (2006), p.333. (b) P. Falcaro, D. Grosso, H. Amenitsch and P. Innocenzi: J. Phys. Chem. B, Vol. 108 (2004), p.10942.
DOI: 10.1016/j.tsf.2005.08.223
Google Scholar
[35]
(a) A. R. Balkenende, F. K. de Theije and J. C. Kriege: Adv. Mater. Vol. 15 (2003), p.139. (b) F. K. De Theije, A. R. Balkenende, M. A. Verheijen, M. R. Baklanov, K. P. Mogilnikov and Y. Furukawa: J. Phys. Chem. B Vol. 107 (2003), p.4280.
DOI: 10.1021/jp027701y
Google Scholar
[36]
R. A. Pai, R. Humayun, T. Schulber, A. Sengupta, J. -N. Sun and J. J. Watkins: Science Vol. 303 (2004), p.507.
Google Scholar
[37]
G. Wirnsberger, B. J. Scott and G. D. Stucky: Chem. Commun. Vol. 1 (2001), p.119.
Google Scholar
[38]
H. Y. Fan, Y. F. Lu, A. Stump, S. T. Reed, T. Baer, R. Schunk, L. V. Perez, G. P. Lopez, C. J. Brinker: Nature Vol. 405 (2000), p.56.
DOI: 10.1038/35011026
Google Scholar
[39]
(a) A. Bearzotti, J. M. Bertolo, P. Innocenzi, P. Falcaro and E. Traversa: Sens. Actuat. BChem. Vol. 95, (2003).
Google Scholar
[40]
(a) Y. D. Wang, C. L. Ma, X. H. Wu, X. D. Sun and H. D. Li: Talanta Vol. 57 (2002), p.875. (b) Y. Wang, X. H. Wu, Y. F. Li and Z. L. Zhou: Solid-State Electron. Vol. 48 (2004), p.627.
Google Scholar
[41]
K. Domansky, J. Liu, L. Q. Wang, M. H. Engelhard and S. Baskaran, J. Mater. Res. Vol. 16 (2001), p.2810.
Google Scholar
[42]
T. Yamada, H. Zhou, H. Uchida, I. Honma and T. J. Katsube: Phys. Chem. B Vol. 108 (2004), p.13341.
Google Scholar
[43]
W. Yantasee, Y. H. Lin, X. H. Li, G. E. Fryxell, T. S. Zemanian and V. V. Viswanathan, Analyst, Vol. 128 (2003), p.899.
Google Scholar
[44]
E. H. Otal, P. C. Angelomé, S. Aldabe-Bilmes and G.J.A.A. Soler-Illia: Adv. Mater., Vol. 18 (2006), p.934.
DOI: 10.1002/adma.200502215
Google Scholar
[45]
N. Liu, D. R. Dunphy, P. Atanassov, S. D. Bunge, Z. Chen, G. P. López, T. J. Boyle and C. J. Brinker: Nano Lett. Vol. 4 (2004), p.551.
Google Scholar
[46]
B.D. Gates, Q. Xu, M. Stewart, D. Ryan, C.G. Willson and G. M. Whitesides: Chem. Rev. Vol. 105 (2005), p.1171.
Google Scholar
[47]
B.J. Scott, G. Wirnsberger, M.D. McGehee, B. Chmelka and G. D. Stucky: Adv. Mater. Vol. 13 (2001), p.1231.
Google Scholar
[48]
(a) P. C. Angelomé, M. C. Fuertes and G. J.A.A. Soler-Illia: Adv. Mater. Vol. 18 (2006).
Google Scholar