| Literature DB >> 30970779 |
Chi-Hui Tsou1,2,3, Wei-Hua Yao4, Yi-Cheng Lu5, Chih-Yuan Tsou6,7, Chin-San Wu8, Jian Chen9, Ruo Yao Wang10, Chaochin Su11, Wei-Song Hung12, Manuel De Guzman13, Maw-Cherng Suen14.
Abstract
A novel method was used to synthesize a nanosilver-doped multiwall carbon nanotube (MWCNT-Ag), and subsequently, the novel poly(lactic acid) (PLA)- and MWCNT-Ag-based biocompatible and antimicrobial nanocomposites were prepared by melt blending. Based on energy dispersive X-ray spectrometry images, an MWCNT-Ag was successfully synthesized. The effect of the MWCNT-Ag on the PLA bionanocomposites was investigated by evaluating their thermal and mechanical properties, antifungal activity, and cytotoxicity. The nanocomposites exhibited a high degree of biocompatibility with the MWCNT-Ag content, which was less than 0.3 phr. Furthermore, tensile strength testing, thermogravimetric analysis, differential scanning calorimetry, and antibacterial evaluation revealed that the tensile strength, thermostability, glass transition temperature, and antibacterial properties were enhanced by increasing the MWCNT-Ag content. Finally, hydrolysis analysis indicated that the low MWCNT-Ag content could increase the packing density of PLA.Entities:
Keywords: antibacterial property; bionanocomposites; cytotoxicity; nanosilver-doped multiwall carbon nanotube; poly(lactic acid)
Year: 2017 PMID: 30970779 PMCID: PMC6431862 DOI: 10.3390/polym9030100
Source DB: PubMed Journal: Polymers (Basel) ISSN: 2073-4360 Impact factor: 4.329
Figure 1Nanosilver-doped multiwall carbon nanotube (MWCNT-Ag) synthesis.
Designations and compositions of the poly(lactic acid) (PLA)/MWCNT-Ag nanocomposites.
| Samples | PLA (g) | MWCNT-Ag (g) | BC content (Phr) |
|---|---|---|---|
| PLA | 50 | 0 | 0 |
| PLA/MWCNT-Ag0.1 | 50 | 0.05 | 0.1 |
| PLA/MWCNT-Ag0.2 | 50 | 0.1 | 0.2 |
| PLA/MWCNT-Ag0.3 | 50 | 0.15 | 0.3 |
Figure 2Thermogravimetric analysis (TGA) curves of the PLA and PLA/MWCNT-Ag nanocomposites (DTG curves are showed in Figure S3).
DSC values of PLA and PLA/MWCNT-Ag nanocomposites.
| Samples | |||
|---|---|---|---|
| PLA | 67.1 | 169.3 | 1.57 |
| PLA/MWCNT-Ag0.1 | 67.1 | 171.5 | 15.35 |
| PLA/MWCNT-Ag0.2 | 67.2 | 171.3 | 14.98 |
| PLA/MWCNT-Ag0.3 | 67.3 | 171.5 | 14.44 |
Figure 3Tensile properties of the PLA and PLA/MWCNT-Ag nanocomposites.
Figure 4Antibacterial activity of the PLA and PLA/MWCNT-Ag nanocomposites.
Elemental composition of MWCMT and MWCNT-Ag.
| Samples | Element | Weight (%) | Atomic (%) |
|---|---|---|---|
| MWCNT | C | 100.00 | 100 |
| Ag | - | - | |
| Totals | 100.00 | 100.00 | |
| MWCNT-Ag | C | 89.66 | 98.73 |
| Ag | 10.34 | 1.27 | |
| Totals | 100.00 | 100.00 |
Figure 5EDX image of (a) MWCNT and (b) MWCNT-Ag.
Figure 6EDX images of Ag distribution in the PLA/MWCNT-Ag nanocomposites: (a) PLA; (b) PLA/MWCNT-Ag0.1; (c) PLA/MWCNT-Ag0.2; and (d) PLA/MWCNT-Ag0.3.
Figure 7Methyl tetrazolium (MTT) assay results for the PLA and PLA/MWCNT-Ag nanocomposites.
Figure 8L929 fibroblasts cultured for three days with (a) positive control; (b) negative control; (c) PLA; (d) PLA/MWCNT-Ag0.1; (e) PLA/MWCNT-Ag0.2; and (f) PLA/MWCNT-Ag0.3. (L929 fibroblasts cultured for control is showed in Figure S5; for two days are showed in Figure S6).
Figure 9Weight loss of the PLA and PLA/MWCNT-Ag nanocomposites.
Figure 10Weight loss of (a) PLA; (b) PLA/MWCNT-Ag0.1; (c) PLA/MWCNT-Ag0.2; and (d) PLA/MWCNT-Ag0.3 nanocomposites.