| Literature DB >> 22315562 |
Goran Nikolic1, Sasa Zlatkovic, Milorad Cakic, Suzana Cakic, Caslav Lacnjevac, Zoran Rajic.
Abstract
The use of fast FT-IR spectroscopy as a sensitive method to estimate a change of the crosslinking kinetics of epoxy resin with polyamine adducts is described in this study. A new epoxy formulation based on the use of polyamine adducts as the hardeners was analyzed. Crosslinking reactions of the different stoichiometric mixtures of the unmodified GY250 epoxy resin with the aliphatic EH606 and the cycloaliphatic EH637 polyamine adducts were studied using mid FT-IR spectroscopic techniques. As the crosslinking proceeded, the primary amine groups in polyamine adduct are converted to secondary and the tertiary amines. The decrease in the IR band intensity of epoxy groups at about 915 cm(-1), as well as at about 3,056 cm(-1), was observed due to process. Mid IR spectral analysis was used to calculate the content of the epoxy groups as a function of crosslinking time and the crosslinking degree of resin. The amount of all the epoxy species was estimated from IR spectra to changes during the crosslinking kinetics of epichlorhydrin.Entities:
Keywords: FT-IR spectroscopy; epoxy resin; polyamine adducts
Mesh:
Substances:
Year: 2010 PMID: 22315562 PMCID: PMC3270863 DOI: 10.3390/s100100684
Source DB: PubMed Journal: Sensors (Basel) ISSN: 1424-8220 Impact factor: 3.576
Figure 1.Scheme of epoxy/amine reactions (1–3) and etherification (4) in epoxy/aliphatic amine reactions.
Figure 2.Chemical structure of diglycidyl ether bisphenol A (DGEBA) epoxy resin.
IR absorption bands of the epoxy GY250 resin, EH polyamine adducts and their crosslinked GY250/EH system.
| Ph-OH str | 3,510 weak | - | - |
| C-OH str | - | - | 3,427 |
| -CH-(O-CH2) epoxy, str | 3,056 | - | 3,055, disappearance |
| Ar =C-H str | 3,030 | 3,029 | 3,026 |
| -NH2, -NH str | - | 3,340-3,170 | -, OH overlay |
| -NH2, -NH bend | - | 1,510, 1,495 | 1,511, disappearance |
| -CH2-, -CH3- assym str | 2,925, 2,967 | 2,918, 2,950 | 2,921, 2,965 |
| -CH2-, -CH3- sym str | 2,855, 2,872 | 2,850, 2,870 | 2,852, 2,865 |
| Ar -C-H overtone | 2,000-1,600 | 2,000-1,600 | 2,000-1,600 |
| -OH bend | - | - | 1,638, overlay |
| Ar -C=C-H str | 1,607,1,580, 1,510 | 1,605, 1,580, 1,510 | 1,602, 1,581, 1,511 |
| -CH2-, -CH3- bend | 1,455, 1,362 | 1,458, 1,374 | 1,460, 1,380 |
| -C-C-O-C- str | 1,247, 1,184 | 1,250, 1,181 | 1,251, 1,182 |
| -C-N- str | - | 1,109, 1,046 | 1,109 |
| -O-C-C str | 1,132 | 1,081 | 1,085 |
| -C-O-C- str | 1,036 | 1,025 | 1,035 |
| CH2-O-CH epoxy, bend | 915 | - | 915, disappearance |
| Ar 1,4 substit. ring and C-O-C (oxirane) | 831 | 829 | 826 |
| Ar =C-H, C-H, | 830, 773 | 735, 698 | 729, 693 |
| -C-H, -N-H bend | 574, 638 | 595, 573 | 550 |
Figure 3.The partial FT-IR spectra of the unmodified GY250 resin (a) and the crosslinked epoxy GY250/EH606/EH637 system after three days (b).
Figure 4.Extent of epoxide reaction in GY250/EH606/EH637 systems followed by mid FT-IR spectroscopy at 30 °C.
Figure 5.The epoxy group content in GY250/EH606/EH637 system (100:25:25 stoichiometric ratio) during crosslinking process.