Abstract
We show that the glass transition of a multitude of mixtures containing hydrogen bonding materials correlates strongly with the effective number of hydroxyl groups per molecule, which are available for intermolecular hydrogen bonding. This correlation is in compliance with the topological constraint theory, wherein the intermolecular hydrogen bonds constrain the mobility of the hydrogen bonded network. The finding that the glass transition relates to hydrogen bonding rather than free volume agrees with our recent finding that there is little difference in free volume among carbohydrates and polysaccharides. For binary and ternary mixtures of sugars, polyols, or biopolymers with water, our correlation states that the glass transition temperature is linear with the inverse of the number of effective hydroxyl groups per molecule. Only for dry biopolymer/sugar or sugar/polyol mixtures do we find deviations due to nonideal mixing, imposed by microheterogeneity.
| Original language | English |
|---|---|
| Pages (from-to) | 16303-16313 |
| Journal | The Journal of Physical Chemistry Part B: Condensed Matter, Materials, Surfaces, Interfaces & Biophysical |
| Volume | 117 |
| Issue number | 50 |
| DOIs | |
| Publication status | Published - 2013 |
Keywords
- molecular-dynamics simulations
- gel sol transition
- aqueous-solutions
- free-volume
- glycerol-water
- physical-properties
- positron lifetime
- light-scattering
- phase-behavior
- starch gels
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