| Literature DB >> 30674169 |
Abstract
Hydrogel nanocomposites containing silver nanoparticles of size 15⁻21 nm were prepared by diffusion and in-situ chemical reduction in chemically crosslinked polymers based on N-acryloyl-N'-ethyl piperazine (AcrNEP) and N-isopropylacrylamide (NIPAM). The polymer chains of the hydrogel network offered control and stabilization of silver nanoparticles without the need for additional stabilizers. The presence of silver nanoparticles and their size was quantified by UV-Vis absorption spectroscopy and scanning electron microscopy. The nanocomposite hydrogels were responsive to pH and temperature changes of the external environment. The equilibrium weight swelling ratio of the hydrogel nanocomposite was lower in comparison with the precursor hydrogel. Silver nanoparticles present in the nanocomposite offered additional physical crosslinking which influenced media diffusion and penetration velocity. The release of silver nanoparticles from the hydrogel matrix in response to external pH changes was studied. The rate of release of silver nanoparticles was higher in a solution of pH 2.5 due to maximum swelling caused by ionization of the gel network. No significant release of nanoparticles was observed in a solution of pH 7.Entities:
Keywords: absorption; hydrogels; nanocomposites; silver nanoparticles; swelling
Year: 2015 PMID: 30674169 PMCID: PMC6318592 DOI: 10.3390/gels1010117
Source DB: PubMed Journal: Gels ISSN: 2310-2861
Monomer feed compositions, conversion, and physical appearance of gels.
| Gel | Monomer Feed (mol %) | Appearance | ||||
|---|---|---|---|---|---|---|
| AcrNEP a | NIPAM b | MBA | Before polymerization | After polymerization | ||
| A1N9 | 6.90 | 91.60 | 1.50 | 93.45 | Clear solution | Clear gel |
| A7N3 | 68.95 | 29.55 | 1.50 | 94.26 | Clear solution | Clear gel |
a molar mass of N-acryloyl-N′-ethyl piperazine (AcrNEP) = 168 g·mol−1; b molar mass of N-isopropylacrylamide (NIPAM) = 113 g·mol−1. Cmon. = Conversion of monomer. MBA = N,N'-methylenebisacrylamide
Figure 1Chemical structure of crosslinked hydrogel.
Figure 2General scheme for the synthesis of silver nanocomposite hydrogels.
Figure 3UV-Vis spectra of silver nanoparticles in hydrogel nanocomposites.
Figure 4Scanning electron micrograph of gel A7N3-AgNp.
Equilibrium weight swelling ratio (WSREq) of gels as function of solution pH at 23 °C.
| Gel | WSREq | WSREq pH = 2.5/WSREq pH = 12 | ||||
|---|---|---|---|---|---|---|
| pH = 2.5 | 4.0 | 6.5 | 10.0 | 12.0 | ||
| A1N9 | 7.14 | 5.81 | 5.20 | 4.52 | 3.54 | 2.02 |
| A7N3 | 34.25 | 13.21 | 11.63 | 7.02 | 6.26 | 5.47 |
Figure 5Equilibrium weight swelling ratio of gels and silver nanocomposites in water (pH = 6.5) at 23 °C.
Figure 6Effect of temperature on the swelling of gels and nanocomposite gels in water. Lines are an eye guide.
Figure 7Normalized water sorption isotherm of hydrogel and hydrogel nanocomposite.
Water transport characteristic parameters measured at 23 °C.
| Gel |
|
| ||
|---|---|---|---|---|
| A7N3 | 0.62 | 0.17 | 15.72 | 2.59 |
| A7N3-Ag Np | 0.53 | 0.10 | 13.23 | 1.50 |
n: mode of transport of penetrant, k: characteristic constant of the gel, D: diffusion coefficient, v: penetration velocity.
Water content (free and bound) in gel and nanocomposite gel.
| Sample | Unbound Water (%) | Bound Water (%) | Unbound Water/Bound Water |
|---|---|---|---|
| A7N3 | 82.15 | 17.85 | 4.60 |
| A7N3-AgNp | 75.60 | 24.40 | 3.10 |
Figure 8Effect of pH on the release of silver nanoparticles from hydrogel nanocomposite.