| Literature DB >> 30979216 |
Nurshafiza Shahabudin1, Rosiyah Yahya2, Seng Neon Gan3.
Abstract
One of the approaches to prolong the service lifespan of polymeric material is the development of self-healing ability by means of embedded microcapsules containing a healing agent. In this work,Entities:
Keywords: epoxy; flexural strength; microcapsules; microhardness; renewable resources; self-healing
Year: 2016 PMID: 30979216 PMCID: PMC6431891 DOI: 10.3390/polym8040125
Source DB: PubMed Journal: Polymers (Basel) ISSN: 2073-4360 Impact factor: 4.329
The observed effects of reacting alkyd with ENR50 at different weight ratios in toluene at room temperature (around 27 °C).
| Details | Sample 1 | Sample 2 | Sample 3 |
|---|---|---|---|
| Ratio of alkyd:ENR50 | 1:9 | 1:1 | 9:1 |
| Initial observation | Clear solution | Clear solution | Clear solution |
| After 4 h | Turned viscous | Observable gel | Phase separation |
| Upon removal of toluene | Sticky mass | Elastic solid | Brittle solid |
Figure 1Acid number change vs. reaction time.
Figure 2Spectroscopic characterizations of core material (alkyd AlkPKO65): (a) FTIR spectrum; and (b) 1H-NMR spectrum.
Properties of alkyd AlkPKO65.
| Characteristic | AlkPKO65 |
|---|---|
| Oil length (%) | 65 |
| Acid number (mg KOH·g−1) | 15 |
| Viscosity (Pa·s) | 2.14 |
Figure 3Plausible reaction in the formation of the alkyd.
Figure 4(a) Reactions of urea and formaldehyde to form mono- and di-methylol urea; (b) Reactions between methylol urea to form linkages; and (c) Reaction between methylol and resorcinol (as crosslinking agent).
Figure 5(a) Chemical structure of melamine resin (Cymel 303®); (b) Plausible reaction of melamine resin; and (c) Plausible reactions of alkyd with methylol urea and –N–CH2–O–CH3 of melamine resin.
Characterization data for alkyd microencapsulation.
| Sample | M/U Ratio | M (g) | U (g) | Yield (%) | Core-Content (wt %) | Mean Diameter (µm) | Description of Microcapsules (MCs) |
|---|---|---|---|---|---|---|---|
| A2 | 0 | 0 | 2.50 | 40 | 89.9 (0.5) | 403 (56) | Spherical, free-flowing |
| B1 | 0.03 | 0.08 | 2.49 | 65 | 94.8 (0.3) | 383 (56) | Spherical, free-flowing |
| B2 | 0.06 | 0.16 | 2.47 | 60 | 92.0 (1.3) | 380 (60) | Spherical, free-flowing |
| B3 | 0.12 | 0.30 | 2.45 | 49 | 91.9 (0.4) | 384 (55) | Spherical, free-flowing |
| B4 | 0.29 | 0.70 | 2.40 | – | – | – | Mixture of irregular shapes |
M: Melamine resin; U: Urea. The same amount of formaldehyde was used in all cases. Values in parentheses are the standard deviation.
Figure 6Digital microscopic images of microcapsules with increasing M/U ratio: (a) 0; (b) 0.03; (c) 0.06; (d) 0.12; and (e) 0.29.
Figure 7Infrared spectra of: (a) Neat alkyd; (b) Extracted core; and (c) PMUF shell.
Figure 81H-NMR spectra of extracted core of sample B2.
Figure 9DSC thermograms of samples A2 and B2, the neat alkyd and shell materials.
Figure 10TGA thermograms of B2, neat alkyd and PMUF shell.
TGA data of microcapsules, core and shell.
| Sample | ||
|---|---|---|
| A2 | 250 | 352 |
| B1 | 250 | 375 |
| B2 | 258 | 375 |
| B3 | 245 | 369 |
| Alkyd | 250 | 342 |
| PUF shell | 220 | 310 |
| PMUF shell | 220 | 331 |
Td: Onset degradation temperature.
Figure 11FESEM micrographs of a microcapsule at: (a) 500× and (b) 10,000× magnifications.
Figure 12FESEM micrograph of a ruptured microcapsule at: (a) 500×; and (b) 4000× magnifications.
Figure 13(a) Optical microscopic image of microcapsules embedded in the epoxy matrix; (b) FESEM micrograph of a sliced epoxy matrix showing a cavity previously occupied by a microcapsule.
Figure 14Effect of the microcapsules loading on the mechanical properties of the epoxy matrix: (a) Flexural strength; and (b) Microhardness (Vickers).
Reactions of alkyd, epoxy and amine hardener in different blends.
| Sample | Eq. wt Ratio of Epoxy/Amine/Alkyd | Epoxy/Alkyd wt Ratio | Epoxy (g) | Amine (g) | Alkyd (g) | After 24 h at rt |
|---|---|---|---|---|---|---|
| Control | 1/1/0 | 100/0 | 1 | 0.58 | 0 | Cured, solid |
| EA1 | 1/0.8/0.2 | 100/39 | 1 | 0.44 | 0.39 | Cured, solid |
| EA2 | 1/0.8/0.1 | 100/20 | 1 | 0.44 | 0.20 | Cured, solid |
| EA3 | 1/0.7/0.1 | 100/20 | 1 | 0.39 | 0.20 | Cured, solid |
Figure 15Scheme of plausible reactions of carboxylic groups of alkyd with: (a) Epoxy; and (b) Amino group.
Figure 16FTIR spectra of neat alkyd, epoxy resin and cured epoxy, EA1, EA2 and EA3 samples.