| Literature DB >> 24872803 |
Guangyu Zhang1, Yan Liu2, Xiaoliang Gao2, Yuyue Chen1.
Abstract
A silver nanoparticle solution was prepared in one step by mixing AgNO3 and a multi-amino compound (RSD-NH2) solution under ambient condition. RSD-NH2 was in-house synthesized by methacrylate and polyethylene polyamine in methanol, which has abundant amino and imino groups. However, the characterization of silver nanoparticles indicated that these nanoparticles are easy to agglomerate in solution. Therefore, an in situ synthesis method of silver nanoparticles on the silk fabrics was developed. The examined results confirmed that the in situ synthesized silver nanoparticles were evenly distributed on the surface of fibers. The inhibition zone test and the antibacterial rate demonstrated that the finished fabrics have an excellent antibacterial property against Staphylococcus aureus and Escherichia coli. Moreover, the nanosilver-treated silk fabrics were laundered 0, 5, 10, 20, and 50 times and still retained the exceptional antibacterial property. When the treated fabrics were washed 50 times, the antibacterial rate is more than 97.43% for S. aureus and 99.86% for E. coli. The excellent laundering durability may be attributed to the tight binding between silver nanoparticles and silk fibers through the in situ synthesis. This method provides an economic method to enhance the antibacterial capability of silk fabrics with good resistance to washings.Entities:
Keywords: Antibacterial activity; Multi-amino compound (RSD-NH2); Silk fabric; Silver nanoparticle
Year: 2014 PMID: 24872803 PMCID: PMC4022402 DOI: 10.1186/1556-276X-9-216
Source DB: PubMed Journal: Nanoscale Res Lett ISSN: 1556-276X Impact factor: 4.703
Figure 1Schematic description of the RSD-NH 's molecular structure.
Figure 2FTIR spectra of (a) RSD-NH and (b) silver/RSD-NH nanohybrid.
Figure 3Schematic description of silver ammonia.
Figure 4TEM images and corresponding histograms of silver colloid nanoparticles [AgNO ] = 0.017 g/l (a), 0.085 g/l (b), 0.17 g/l (c), 0.225 g/l (d).
Figure 5UV-vis spectra of silver colloid nanoparticles at different time points. (a) 0 h. (b) 1 h. (c) 6 h. (d) 12 h. (e) 24 h. (f) 48 h. (g) 1 week. (h) 2 weeks. [AgNO3] = 0.17 g/l.
Figure 6XRD spectra of silver nanoparticles.
Size of the micro-crystal of the resulting nanosilver particles
| Planes | 111 | 200 | 220 | 311 |
| Half bandwidth | 0.30 | 0.45 | 0.54 | 0.66 |
| Size of the micro-crystal (nm) | 26.74 | 17.66 | 20.96 | 21.71 |
The WI, silver content, and antibacterial rate of nanosilver-treated fabrics
| | ||||||
|---|---|---|---|---|---|---|
| Untreated | - | 90.79 | 2.28 × 106 | - | 4.37 × 106 | - |
| a | 98.65 | 86.32 | 1.53 × 102 | 99.99 | 2.22 × 103 | 99.49 |
| b | 113.50 | 85.67 | 4.56 × 102 | 99.98 | 2.09 × 103 | 99.52 |
| c | 126.48 | 84.96 | 3.19 × 103 | 99.86 | 1.39 × 103 | 99.68 |
| d | 139.82 | 83.18 | 4.52 × 102 | 99.98 | 9.1 × 102 | 99.79 |
| e | 148.68 | 82.19 | 1.62 × 102 | 99.99 | 8.7 × 102 | 99.98 |
The WI, silver content, and antibacterial rate of different washing times
| | |||||||
|---|---|---|---|---|---|---|---|
| Untreated | - | - | 90.79 | 2.28 × 106 | - | 4.37 × 106 | - |
| Silver-treated fabrics | - | 98.65 | 86.32 | 1.16 × 103 | 99.49 | 8.74 × 102 | 99.98 |
| 5 | 95.02 | 86.43 | 3.44 × 103 | 98.49 | 1.74 × 103 | 99.96 | |
| 10 | 88.85 | 87.13 | 1.28 × 103 | 99.49 | 6.11 × 103 | 99.86 | |
| 20 | 87.14 | 87.58 | 2.53 × 103 | 98.89 | 1.48 × 103 | 99.96 | |
| 50 | 81.65 | 87.71 | 5.86 × 103 | 97.43 | 6.11 × 103 | 99.86 | |
Figure 7SEM images of the surface of the silk fabrics. (a) Original silk fabric. (b) Nanosilver-treated silk fabric. (c) Nanosilver-treated silk fabric after washing for 50 times.
Figure 8K/S spectrum of silver nanoparticle-treated silk fabrics.