| Literature DB >> 36005119 |
Qingsheng Ni1, Weijuan Ye2, Miao Du2, Guorong Shan1,3, Yihu Song2, Qiang Zheng2.
Abstract
The rheological behavior of polyvinyl alcohol (PVA) aqueous solution is crucial to optimizing the processing technology and performance of PVA products. In this paper, the dynamic rheological behavior of PVA aqueous solution was investigated in detail. PVA solution with a concentration of 10 wt% showed unnormal rheological behaviors, that is, the liquid-like behavior in the high frequency (ω) region and the solid-like behavior in the low ω region. A storage modulus (G') plateau appears in the relatively low ω region as a gel with a network structure. Different from conventional hydrogel, this plateau has a low modulus, and the corresponding size of the relaxation unit is estimated to be 554 nm, being higher than the size of a whole PVA chain. It is believed that the network mesh is formed by the intermolecular hydrogen bonding interactions among PVA chains. The relaxation time of these meshes is longer than the reptation time of a PVA chain. Based on the relaxation spectrum and calculation analysis, it is found that the destruction of intermolecular hydrogen bonds, such as by heating up, adding sodium dodecyl sulfate, and shear operation, will make the relaxation unit (mesh) larger and lead to the left shift of the intersection of G' and loss modulus (G″). In a PVA solution with a high concentration, multiple meshes of various sizes could be formed and thus generate multiple relaxation peaks. The large-sized meshes mainly contribute to the left shift of the intersection of G' and G″, and the small-sized meshes contribute to the high plateau modulus. The results in this paper offer a new angle to analyze polymer solutions with strong intermolecular interaction.Entities:
Keywords: PVA aqueous solution; dynamic rheological behavior; hydrogen bond; relaxation spectrum
Year: 2022 PMID: 36005119 PMCID: PMC9407300 DOI: 10.3390/gels8080518
Source DB: PubMed Journal: Gels ISSN: 2310-2861
Figure 1Dynamic rheological behavior of 10 wt% PVA aqueous solution. (a) Frequency scanning result. (b) Timescanning result.
Figure 2Sketch of dynamic frequency sweep curve of polymer chain in a wide frequency range at room temperature.
Figure 3Schematic diagram of hydrogen bond mesh in PVA solution.
Figure 4Dynamic test result and the corresponding relaxation spectrum of 10 wt% PVA and 10 wt% PEG solution. (a) Dynamic rheological behavior. (b) Relaxation spectrum. (c) Schematic diagram of relaxation units at , and .
Figure 5Dynamic rheological behavior and the corresponding relaxation spectrum of 10 wt% PVA before and after shear. (a) Dynamic rheological behavior. (b) Relaxation spectrum.
Figure 6Dynamic rheological behavior and the corresponding relaxation spectrum of 10 wt% PVA at different temperature. (a) Dynamic rheological behavior. (b) Relaxation spectrum.
Figure 7Dynamic rheological behavior and the corresponding relaxation spectrum of PVA solution with concentrations. (a) Dynamic rheological behavior. (b) Relaxation spectrum.
Mesh size of PVA solution with different concentrations.
| wt% | ξH (nm) |
|---|---|
| 6 | − |
| 8 | 76,400 |
| 10 | 554 |
| 14 | 488 |
| 16 | 181 |
Figure 8Dynamic rheological behavior and the corresponding relaxation spectrum of 10 wt% PVA with different SDS concentration. (a) Dynamic rheological behavior. (b) Relaxation spectrum.
Concentration of the measured aqueous solution.
| Solution | Polymer Concentration wt% |
|---|---|
| PEG | 10 |
| PVA | 6, 8, 10, 14, 16 |
| 0.0007 mol/L SDS-PVA | 10 |
| 0.002 mol/L SDS-PVA | 10 |