Cristin-resultat-ID: 1254950
Sist endret: 12. januar 2016, 12:39
NVI-rapporteringsår: 2015
Resultat
Vitenskapelig artikkel
2015

The stability of amino-functionalized polyhedral oligomeric silsesquioxanes in water

Bidragsytere:
  • Sylvie Neyertz
  • David Brown
  • Monika Pilz
  • Nicolas Rival
  • Bjørnar Arstad
  • Ferdinand Männle
  • mfl.

Tidsskrift

Journal of Physical Chemistry B
ISSN 1520-6106
e-ISSN 1520-5207
NVI-nivå 1

Om resultatet

Vitenskapelig artikkel
Publiseringsår: 2015
Volum: 119
Hefte: 21
Sider: 6433 - 6447

Importkilder

Scopus-ID: 2-s2.0-84930655059

Beskrivelse Beskrivelse

Tittel

The stability of amino-functionalized polyhedral oligomeric silsesquioxanes in water

Sammendrag

Octa(aminopropylsilsesquioxane) Si8O12[(CH2)3NH2]8 is a very important precursor for many other hybrid organic/inorganic polyhedral oligomeric silsesquioxanes (POSS) because of the reactivity of its primary amine groups. Unfortunately, it is unstable in water, which can lead to the cleavage of its siloxane cage. In the present work, such a degradation was confirmed using solid-state 29Si NMR spectroscopy, and the molecular features at the basis of this instability were studied using molecular dynamics simulations (MD). It was also investigated whether replacing the primary amine end groups by secondary amines or by amides with long aliphatic chains could lead to an improvement in the water stability of the Si/O framework. In the pure bulk models, all POSS interdigitate with their pendant organic arms intertwined. Upon insertion of isolated molecules into water, the dimensions of the primary amine POSS remain close to those of the bulk, while the secondary amine and the amide POSS favor conformations that optimize the intramolecular chain–chain interactions. When there are several POSS molecules in water, they cluster with each other through both intra- and intermolecular chain–chain interactions. This tendency for the organic chains to intertwine whenever possible provides some protection to the siloxane cages from water, but also leaves some of the siloxane O exposed. As such, the latter are accessible to form transient hydrogen bonds with the water molecules, which could be a precursor step to hydrolysis and thus cage breakage. In the molecular models, a better protection was obtained in the amide POSS for two reasons: its chains tended to wrap efficiently around its cage, and its ketone O kept water from getting close to the siloxanes. The molecular modeling characterizations were found to agree very well with experimental evidence.

Bidragsytere

Sylvie Neyertz

  • Tilknyttet:
    Forfatter
    ved Université Savoie Mont Blanc
  • Tilknyttet:
    Forfatter
    ved Centre national de la recherche scientifique

David Brown

  • Tilknyttet:
    Forfatter
    ved Centre national de la recherche scientifique
  • Tilknyttet:
    Forfatter
    ved Université Savoie Mont Blanc
Aktiv cristin-person

Monika Pilz

  • Tilknyttet:
    Forfatter
    ved Materialer og nanoteknologi ved SINTEF AS

Nicolas Rival

  • Tilknyttet:
    Forfatter
    ved Materialer og nanoteknologi ved SINTEF AS

Bjørnar Arstad

  • Tilknyttet:
    Forfatter
    ved Prosessteknologi ved SINTEF AS
1 - 5 av 7 | Neste | Siste »