Structural changes of UHMWPE after e‐beam irradiation and thermal treatment

Miroslav Šlouf(Czech Academy of Sciences, Institute of Macromolecular Chemistry), Hana Synková(Czech Academy of Sciences, Institute of Macromolecular Chemistry), Josef Baldrián(Czech Academy of Sciences, Institute of Macromolecular Chemistry), Antonín Marek(Czech Academy of Sciences, Institute of Macromolecular Chemistry), Jana Kovářová(Czech Academy of Sciences, Institute of Macromolecular Chemistry), Pavel Schmidt(Czech Academy of Sciences, Institute of Macromolecular Chemistry), H. Dorschner(Leibniz Association), M. Stephan(Leibniz Association), Uwe Gohs(Fraunhofer Institute for Organic Electronics, Electron Beam and Plasma Technology)
Journal of Biomedical Materials Research Part B Applied Biomaterials
September 12, 2007
Cited by 82

Abstract

Ultra-high molecular weight polyethylene (UHMWPE) was irradiated with accelerated electrons (1 MeV in air) using high dose rates (> 25 kGy/min) and thin specimens (thickness 1 mm). Parts of the specimens were remelted (200 degrees C for 10 min; 150 degrees C for 0, 2, 10, 30, 60 min). All specimens were stored in nitrogen in the dark at 5 degrees C. Supermolecular structure, extent of crosslinking, oxidative degradation, and macroradical content were studied by a number of methods (SAXS, WAXS, SEM, DSC, FTIR, ESR, TGA, solubility experiments, image analysis). The results obtained with irradiated samples were compared with those obtained with irradiated and remelted samples. It was confirmed that crosslinking predominates over chain scission at very high dose rates, even if the irradiation is performed in air. Discrepancies concerning supermolecular structure changes in UHMWPE after irradiation and thermal treatment, found in various studies in the literature, are discussed. A simple model, which describes and explains all supermolecular structure changes, is introduced. An effective way of eliminating residual macroradicals in UHMWPE is proposed.


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