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Preparation and solid state NMR characterization of phosphonates encapsulated in raw and organically modified SBA-15

Published online by Cambridge University Press:  31 January 2011

Thierry Azais
Affiliation:
thierry.azais@upmc.fr, Paris 6 University, Laboratoire Chimie de la Matiere Condensee de Paris, Paris, France
Daniela Aiello
Affiliation:
daniela.aiello@unical.it, University of Calabria, Department of Chemical Engineering and Materials, Arcavacata di Rende, Italy
Flaviano Testa
Affiliation:
f.testa@unical.it, University of Calabria, Department of Chemical Engineering and Materials, Arcavacata di Rende, Italy
Guillaume Laurent
Affiliation:
guillaume.laurent@upmc.fr, Paris 6 University, Laboratoire Chimie de la Matiere Condensee de Paris, Paris, France
Florence Babonneau
Affiliation:
florence.babonneau@upmc.fr, Paris 6 University, Laboratoire Chimie de la Matiere Condensee de Paris, Paris, France
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Abstract

We present in this communication the preparation and the solid state NMR characterization of phenyl phosphonic acid encapsulated both in pure and aminopropyl-modified SBA-15 mesoporous silica materials. The 31P and 1H MAS studies revealed two radically different behaviors of the confined molecules. The included phosphonic acid in SBA-15 is submitted to a confinement effect that implies a weak interaction with the SiO2 surface and a relative mobility at room temperature. On the contrary, phenyl phosphonic acid molecules in the aminopropyl modified sample possess a strong interaction with the hybrid surface of the material. This finding is supported by a two dimensional double-quantum 1H experiment that revealed the close proximity between phenyl phosphonic acid and aminopropyl surface groups.

Type
Research Article
Copyright
Copyright © Materials Research Society 2010

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References

1 Vallet-Regi, M.; Ramila, A.; del Real, R. P.; Pérez-Pariente, J. Chem. Mater. 13, 308 (2001).Google Scholar
2 Vallet-Regi, M.; Balas, F.; Arcos, D. Angew. Chem. Int. Ed. 46, 7548 (2007).Google Scholar
3 Andersson, J.; Rosenholm, J.; Areva, S.; Lindén, M. Chem. Mater. 16, 4160 (2004).Google Scholar
4 Balas, F., Manzano, M., Horcajada, P., and Vallet-Regi, M., J. Am. Chem. Soc. 128, 8116 (2006)Google Scholar
5 Azaïs, T.; Tourné-Pétheil, C.; Aussenac, F.; Baccile, N.; Coelho, C.; J-M., Devoisselle; Babonneau, F. Chem. Mater. 18, 6382 (2006).Google Scholar
6 Bonhomme, C.; Coelho, C.; Baccile, N.; Gervais, C.; Azaïs, T.; Babonneau, F. Accounts Chem. Res. 40, 738 (2007).Google Scholar
7 Zhao, D., Feng, J., Huo, Q., Melosh, N., Fredrickson, G.H., Chmelka, B.F., Stucky, G.D., Science 279, 548 (1998).Google Scholar
8 Charnay, C., Begu, S., Tourne-Peteilh, C., Nicole, L., Lerner, D.A., Devoisselle, J.-M., Eur. Pharm. Biopharm. 57, 533 (2004).Google Scholar
9 Brunauer, S., Emmett, P.H., Teller, E.J., J. Am. Chem. Soc. 60, 309 (1938)Google Scholar
10 Barrett, P., Joyner, L.G., Halenda, P., J. Am. Chem. Soc. 73, 373 (1951)Google Scholar
11 Crutchfield, M. M., Callis, C. F., Irani, R. R., Roth, G. C., Inorg. Chem., 1, 4, 813 (1962).Google Scholar
12 Pines, A., Gribby, M., J. Waugh, J. Chem. Phys. 59, 569 (1973).Google Scholar
13 Holland, G. P., Sharma, R., Agola, J. O., Amin, S., Solomon, V. C., Singh, P., Buttry, D. A. and Yarger, J. L., Chem. Mater. 19, 2519 (2007)Google Scholar
14 Alba-Simionesco, C.; Coasne, B.; Dosseh, G.; Dudziak, G.; Gubbins, K E.; Radhakrishnan, R.; Sliwinska-Bartkowiak, M. J. Phys.: Condens. Matter 18, R15 (2006).Google Scholar
15 Azaïs, T.; Hartmeyer, G.; Quignard, S.; Laurent, G.; Tourné-Péteilh, C.; Devoisselle, J-M.; Babonneau, F. Pure Appl. Chem. 81, 1345 (2009).Google Scholar
16 Schmidt-Rohr, K., Spiess, H. W., «Multinuclear NMR in Solids and Polymers», Acad. Presse, 1996.Google Scholar
17 Gervais, C., Profeta, M., Lafond, V., Bonhomme, C., Azaïs, T., Mutin, H., Pickard, C. J., Mauri, F., Babonneau, F., Magn. Reson. Chem. 42, 445 (2004).Google Scholar
18 Schnell, I.; Spiess, H. W. J. Magn. Reson. 151, 153 (2001).Google Scholar