Vibrational spectroscopic study of SiO sub(2)-based nanotubes

Novel organic-inorganic hybrid nanotubes containing silica and ethane (EtSNT), ethylene (ESNT) and acetylene (ASNT) units, as well as brominated ESNT (Br-ESNT) and glycine-modified Br-ESNT (Gly-ESNT) have been studied by IR and Raman spectroscopy. The results are compared with the spectral features...

Full description

Saved in:
Bibliographic Details
Published inVibrational spectroscopy Vol. 66; pp. 104 - 118
Main Authors Fischer, CE, Mink, J, Hajba, L, Bacsik, Z, Nemeth, C, Mihaly, J, Raith, A, Cokoja, M, Kuehn, F E
Format Journal Article
LanguageEnglish
Published 01.05.2013
Subjects
Online AccessGet full text

Cover

Loading…
More Information
Summary:Novel organic-inorganic hybrid nanotubes containing silica and ethane (EtSNT), ethylene (ESNT) and acetylene (ASNT) units, as well as brominated ESNT (Br-ESNT) and glycine-modified Br-ESNT (Gly-ESNT) have been studied by IR and Raman spectroscopy. The results are compared with the spectral features for conventional silica nanotubes (SNT) and amorphous silica. Bands peculiar to organic moieties have been detected and assigned. Assignment of the silicate backbone vibrations was based on the results of normal coordinate calculations. Furthermore, characteristic silicate, so-called 'nanotube' vibrations have been identified and their band positions have been summarized to serve as a future reference for such compounds. SiOSi antisymmetric stretchings were observed in the range 1000-1110 cm super(-1), while the symmetric stretchings appeared between 760 and 960 cm super(-1) for EtSNT, ESNT and Br-ESNT. Force constants have been refined for models of the repeating structure units: O sub(3)SiOSi(OSi) sub(3) for SNT and SiCH sub(n)CH sub(n)Si(OSi) sub(3) for organosilica nanotubes (n = 2, EtSNT; n = 1, ESNT and n = 0, ASNT). The calculated SiO stretching force constants were increased from 4.79 to 4.88 and 5.11 N cm super(-1) for EtSNT, ESNT and ASNT, respectively. The force constants have been compared with those for several silicates and SiO bond length are predicted and discussed.
Bibliography:ObjectType-Article-2
SourceType-Scholarly Journals-1
content type line 23
ObjectType-Feature-1
ISSN:0924-2031