| Literature DB >> 25750755 |
A Tayel1, M F Zaki2, A B El Basaty1, Tarek M Hegazy3.
Abstract
The aim of the present study was extended from obtaining information about the interaction of gamma rays with Makrofol DE 7-2 track detector to introduce the basis that can be used in concerning simple sensor for gamma irradiation and bio-engineering applications. Makrofol polymer samples were irradiated with 1.25 MeV (60)Co gamma radiations at doses ranging from 20 to 1000 kG y. The modifications of irradiated samples so induced were analyzed using UV-vis spectrometry, photoluminescence spectroscopy, and the measurements of Vickers' hardness. Moreover, the change in wettability of irradiated Makrofol was investigated by the contact angle determination of the distilled water. UV-vis spectroscopy shows a noticeable decrease in the energy band gap due to gamma irradiation. This decrease could be attributed to the appearance of a shift to UV spectra toward higher wavelength region after irradiation. Photoluminescence spectra reveal a remarkable change in the integrated photoluminescence intensity with increasing gamma doses, which may be resulted from some matrix disorder through the creation of some defected states in the irradiated polymer. The hardness was found to increase from 4.78 MPa for the unirradiated sample to 23.67 MPa for the highest gamma dose. The contact angle investigations show that the wettability of the modified samples increases with increasing the gamma doses. The result obtained from present investigation furnishes evidence that the gamma irradiations are a successful technique to modify the Makrofol DE 7-2 polymer properties to use it in suitable applications.Entities:
Keywords: Gamma irradiation; Makrofol DE 7-2; Photoluminescence; UV–vis; Vicker’s hardness; Wettability
Year: 2014 PMID: 25750755 PMCID: PMC4348443 DOI: 10.1016/j.jare.2014.01.005
Source DB: PubMed Journal: J Adv Res ISSN: 2090-1224 Impact factor: 10.479
Fig. 1Variation in UV–vis spectra of gamma irradiated Makrofol at different doses.
Fig. 2Variation in the (αhv)2 versus (hv) (a) and the optical energy gap E and number of carbon atoms N (b) for pristine and Makrofol samples irradiated with different doses of gamma rays.
Fig. 3Relation between the absorption coefficient (ln α) and the photon energy (hν) (a) and the Urbach’s energy E (b) for pristine and Makrofol samples irradiated with different doses of gamma rays.
Fig. 4Photoluminescence emission spectra measured at λ = 346 nm of gamma irradiated Makrofol polymer as a function of different doses.
Photoluminescence emission and surface wettability parameters of pristine and gamma irradiated Makrofol DE 7-2 polymer.
| Gamma dose (kG y) | PL emission | Surface wettability | |
|---|---|---|---|
| Relative PL intensity | Contact angle (°) | Roughness | |
| Pristine | 342.21 | 77.6 | 0.87 |
| 20 | 255.67 | 73.3 | 0.91 |
| 100 | 200.72 | 68.2 | 0.85 |
| 180 | 316.20 | 64.7 | 0.64 |
| 500 | 151.14 | 59.6 | 0.73 |
| 1000 | 89.91 | 47.8 | 0.58 |
Fig. 5Variation in Vicker’s hardness (Hv) of irradiated Makrofol polymer as a function of gamma doses.
Fig. 6Dependence of water contact angle on the gamma ray doses of irradiated Makrofol samples.