Org.-inorg. hybrid materials were prepd. by sol-gel processes starting from tetraethoxysilane (TEOS) and a triethoxysilane-terminated polyethylene-b-poly(ethylene glycol) copolymer (PE-PEG-Si). Curing of the initial reactant soln. was carried out under different reaction conditions, and the materials so obtained were investigated by solid-state NMR (NMR). In particular, the mol. structure resulting from a conventional oven heating was compared with that obtained by unconventional microwave heating. The results highlighted that the extent of condensation reactions occurring over several hours under conventional heating is very similar to that resulting in 1 min under microwave heating. Addnl., 29Si-magic angle spinning (MAS) spectra showed that even though the overall extent of crosslinking in the inorg. network is only slightly affected by the thermal history of the sample, significantly different distributions of silicon sites can be present. 13C-CP/MAS selective spectra revealed the presence of PE "cryst." domains within the org. phase, not detectable by differential scanning calorimetry (DSC). Finally, 1H-MAS spectra showed that different hydrogen-bond interactions are present in samples obtained under different curing conditions.

Solid-state nuclear magnetic resonance characterization of PE-PEG/silica hybrid materials prepared by microwave-assisted sol-gel process / Geppi, M; Mollica, G; Borsacchi, S; Marini, M; Toselli, M; Pilati, Francesco. - In: JOURNAL OF MATERIALS RESEARCH. - ISSN 0884-2914. - STAMPA. - 22:(2007), pp. 3516-3525. [10.1557/jmr.2007.0434]

Solid-state nuclear magnetic resonance characterization of PE-PEG/silica hybrid materials prepared by microwave-assisted sol-gel process

PILATI, Francesco
2007

Abstract

Org.-inorg. hybrid materials were prepd. by sol-gel processes starting from tetraethoxysilane (TEOS) and a triethoxysilane-terminated polyethylene-b-poly(ethylene glycol) copolymer (PE-PEG-Si). Curing of the initial reactant soln. was carried out under different reaction conditions, and the materials so obtained were investigated by solid-state NMR (NMR). In particular, the mol. structure resulting from a conventional oven heating was compared with that obtained by unconventional microwave heating. The results highlighted that the extent of condensation reactions occurring over several hours under conventional heating is very similar to that resulting in 1 min under microwave heating. Addnl., 29Si-magic angle spinning (MAS) spectra showed that even though the overall extent of crosslinking in the inorg. network is only slightly affected by the thermal history of the sample, significantly different distributions of silicon sites can be present. 13C-CP/MAS selective spectra revealed the presence of PE "cryst." domains within the org. phase, not detectable by differential scanning calorimetry (DSC). Finally, 1H-MAS spectra showed that different hydrogen-bond interactions are present in samples obtained under different curing conditions.
2007
22
3516
3525
Solid-state nuclear magnetic resonance characterization of PE-PEG/silica hybrid materials prepared by microwave-assisted sol-gel process / Geppi, M; Mollica, G; Borsacchi, S; Marini, M; Toselli, M; Pilati, Francesco. - In: JOURNAL OF MATERIALS RESEARCH. - ISSN 0884-2914. - STAMPA. - 22:(2007), pp. 3516-3525. [10.1557/jmr.2007.0434]
Geppi, M; Mollica, G; Borsacchi, S; Marini, M; Toselli, M; Pilati, Francesco
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Utilizza questo identificativo per citare o creare un link a questo documento: https://hdl.handle.net/11380/421768
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