Effects of 400 keV electrons flux on two space grade silicone rubbers
Two different space grade silicone rubbers were irradiated by an electron flux of 400 keV. The irradiation impact strongly depends on the chemical structure of rubbers (one reinforced with MQ resins, and the other one functionalized with phenyl groups at the silicon atoms and reinforced with silica)...
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Veröffentlicht in: | Materials chemistry and physics 2013-08, Vol.141 (1), p.189-194 |
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Format: | Artikel |
Sprache: | eng |
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Zusammenfassung: | Two different space grade silicone rubbers were irradiated by an electron flux of 400 keV. The irradiation impact strongly depends on the chemical structure of rubbers (one reinforced with MQ resins, and the other one functionalized with phenyl groups at the silicon atoms and reinforced with silica). The irradiated rubbers were studied by means of solvent swelling, solid-state 29Si NMR, and ATR–FTIR spectroscopy. Physical properties were evaluated by thermal (differential scanning calorimetry), mechanical (dynamic mechanical analysis), and thermo-optical (ultraviolet–visible–near infrared spectroscopy) analyses. The formation of silicium T units and Si–CH2–Si networks were evidenced by 29Si NMR, and the increase of the glass transition temperature and of modulus reflect the substantial increase in the macromolecular chain rigidity of the irradiated material. Dramatic damages of mechanical properties were observed, depending on the reinforced materials used. Slight changes of thermo-optical properties were highlighted independently to the initial chemical structure.
•Electron flux radiations generate chains cross-linking.•Cross-linking occurs by T and Si–CH2–Si units formation.•The cross-linking rate is slightly faster for 2D rubber compared to 3D rubber.•Modulus increases much more significantly for 3D rubber. |
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ISSN: | 0254-0584 1879-3312 |
DOI: | 10.1016/j.matchemphys.2013.05.002 |