| Literature DB >> 24010034 |
Mohammad Taghi Taghizadeh1, Narges Sabouri, Babak Ghanbarzadeh.
Abstract
The focuses of this study were to investigate the effect of sodium montmorillonite clay (MMT-Na) content on the physical properties and extent of enzymatic hydrolysis Polyvinyl Alcohol (PVA): Starch (S): Carboxymethyl Cellulose (CMC) nanocomposites using enzyme <alpha>-amylase. The results of this work have revealed that films with MMT-Na content at 5 wt% exhibited a significantly reduced rate and extent of starch hydrolysis. The results suggest that this may have been attributed to interactions between PVA:S:CMC and MMT-Na that further prevented enzymatic attack on the remaining starch phases within the blend. The total solids that remained after 4320 min were 65.46 wt% (PVA:S:CMC); 67.91 wt% (PVA:S:CMC:1% MMT-Na); 78.43 wt% (PVA:S:CMC:3% MMT-Na); 80.24 wt% (PVA:S:CMC:5% MMT-Na). The rate of glucose production from each nanocomposite substrates were decresed significantly as the MMT-Na percentage increased from 0 to 5% (W/W). At the level of 5% (W/W) MMT-Na, the films showed the lowest rate of glucose production values (18.95 μg/ml h). With the increase of the MMT concentration from 0 to 5%, the UTS increased 5 from 18.36 to 20.38 MPa, however, the strain to break (SB) decreased noticeably from 35.56 to 5.22%.Entities:
Keywords: <Alpha>−amylase; Montmorillonite; Nanocomposite; Physical properties; Polyvinyl alcohol
Year: 2013 PMID: 24010034 PMCID: PMC3755708 DOI: 10.1186/2193-1801-2-376
Source DB: PubMed Journal: Springerplus ISSN: 2193-1801
Figure 1Degree of enzymatic degradation (DED) for nanocomposite films. Values are mean± standard deviation (n=3).
Figure 2Water absorption capability (WAC) for nanocomposite films. Values are mean± standard deviation (n=3).
Figure 3Concentration of glucose produced for nanocomposite films in the 72 h of enzymatic degradation due to the action of
Figure 4Concentration of glucose produced for nanocomposite films in the first 8 h of enzymatic degradation due to the action of
A summary of the rates of glucose production due to the action 1 mg of
| Substrate | Rate (μg⁄ml h) | R2 |
|---|---|---|
| PVA:S:CMC | 27.69 | 0.825 |
| PVA:S:CMC:1% MMT | 26.67 | 0.895 |
| PVA:S:CMC:3% MMT | 21.64 | 0.964 |
| PVA:S:CMC:5% MMT | 18.95 | 0.956 |
Figure 5The ultimate tensile strength (UTS) of the PVA:S:CMC:MMT films as a function of MMT content.
Figure 6The strain to break (SB) of the PVA:S:CMC:MMT films as a function of MMT content.
The ultimate tensile strength (UTS) and strain to break (SB) of PVA:S:CMC:MMT films as a function of MMT content
| PVA%:starch%:CMC% | MMT (%w/w film) | UTS (MPa) | SB (%) |
|---|---|---|---|
| 50%:30%:20% | 0% | 18.28±0.68 | 34.50±0.93 |
| 50%:30%:20% | 1% | 20.29±0.54 | 26.25±1.99 |
| 50%:30%:20% | 3% | 19.17±0.41 | 14.32±2.01 |
| 50%:30%:20% | 5% | 20.16±0.35 | 5.12±0.86 |
Figure 7Scanning electron micrographs of PVA:S:CMC degradable films in 72 h of enzymatic degradation due to the action of