Dynamics of DiPGME-Water Mixtures in Mesoporous Silica
Artikel i vetenskaplig tidskrift, 2017

In this study, we have combined dielectric spectroscopy and H-2 NMR to elucidate the molecular dynamics of aqueous solutions of dipropylene glycol monomethyl ether (DiPGME) confined into 2.8 nm pores of MCM-41. The results show that the concentration dependence of the dynamics is completely different compared to the corresponding bulk solutions, where a pronounced nonmonotonic concentration dependence was observed for the glass transition and its related a-relaxation. In the confinement, both the cooperative alpha-relaxation and the more local beta-relaxation are almost unaffected by the water concentration. The main reasons for this seem to be that there is a preferential hydration of the inner pore surfaces, leading to a strong concentration gradient in the pores, as well as ice formation at higher water concentrations (45 wt % and above during heating), also leading to less water and a weaker concentration dependence in DiPGME-rich regions. The beta-process is observed in the DS measurements even for confined DiPGME, without any water. This implies that the beta-relaxation is strongly enhanced, compared to the alpha-relaxation, in the confinement, since it could not be clearly observed in the bulk liquid. A beta-relaxation due to water was observed in the bulk solutions, but this process was rapidly speeding up with increasing water concentration, while it is basically concentration independent in the confinement. From the NMR measurements, it was also possible to conclude that the a-relaxation of the confined solutions is composed of a number of consecutive small-angle elementary rotational jumps, and that the beta-process is related to a spatially restricted motion.

Polymers

Transition

Slow Beta-Process

Organic Glass Formers

Confined Water

Nmr

Spectroscopy

Secondary Relaxation

Supercooled Liquids

Nuclear-Magnetic-Resonance

Författare

M. Sattig

Technische Universität Darmstadt

Khalid Elamin

Chalmers, Fysik, Kondenserade materiens fysik

M. Reuhl

Technische Universität Darmstadt

Jan Swenson

Chalmers, Fysik, Kondenserade materiens fysik

M. Vogel

Technische Universität Darmstadt

Journal of Physical Chemistry C

1932-7447 (ISSN) 1932-7455 (eISSN)

Vol. 121 12 6796-6806

Ämneskategorier

Den kondenserade materiens fysik

DOI

10.1021/acs.jpcc.7b00655

Mer information

Senast uppdaterat

2018-02-28