The versatility of poly(vinyl alcohol) (PVA) makes it
extensively
utilized across various industries, while the solubilization of PVA
in aqueous media is essential for its applications. However, the high
crystallinity of the fully hydrolyzed PVA poses a big challenge in
terms of its dissolution in aqueous media at room temperature. In
this work, we present a straightforward, efficient, and safe strategy
to achieve this objective by the integration of inorganic additives.
The crucial aspect of additives lies in the interference of hydrogen
bonds and breaking of the crystal domain within PVA chains, therefore
greatly enhancing the solubility. At the optimal condition, the solubility
of PVA can reach up to 45 wt% at 25 °C in 4 M HBr solution. It
is further proven that the solubility of PVA follows the Hofmeister
series well, where the chaotropes facilitate the solubilization process.
In addition, the solubility is also significantly determined by the
PVA type and additive concentration. By harnessing this feature, we
successfully engineer recyclable PVA hydrogels with programmable mechanical
properties. The hydrogels exhibit remarkable recyclability by affording
a minimum of 8 regeneration cycles without experiencing significant
deterioration in mechanical properties. Collectively, this research
may significantly contribute to the advancement of PVA applications.