Ferrante Carino, Lucchesi Leonardo, Cemmi Alessia, Di Sarcina Ilaria, Scifo Jessica, Verna Adriano, Taschin Andrea, Senni Luca, Beghini Marco, Monelli Bernardo Disma, Raffaelli Fabrizio
CNR-SPIN, c/o Dip.to di Scienze Fisiche e Chimiche, Via Vetoio, 67010 L'Aquila, Italy.
FSN-FISS-SNI Laboratory, ENEA, Via Anguillarese, 301, 00123 Rome, Italy.
Polymers (Basel). 2024 Apr 25;16(9):1202. doi: 10.3390/polym16091202.
The study of materials for space exploration is one of the most interesting targets of international space agencies. An essential tool for realizing light junctions is epoxy adhesive (EA), which provides an elastic and robust material with a complex mesh of polymeric chains and crosslinks. In this work, a study of the structural and chemical modification of a commercial two-part flexible EA (3M™ Scotch-Weld™ EC-2216 B/A Gray), induced by Co gamma radiation, is presented. Combining different spectroscopic techniques, such as the spectroscopic Fourier transform infrared spectroscopy (FTIR), the THz time-domain spectroscopy (TDS), and the electron paramagnetic resonance (EPR), a characterization of the EA response in different regions of the electromagnetic spectrum is performed, providing valuable information about the structural and chemical properties of the polymers before and after irradiation. A simultaneous dissociation of polymeric chain and crosslinking formation is observed.The polymer is not subject to structural modification at an absorbed dose of 10 kGy, in which only transient free radicals are observed. Differently, between 100 and 500 kGy, a gradual chemical degradation of the samples is observed together with a broad and long-living EPR signal appearance. This study also provides a microscopic characterization of the material useful for the mechanism evaluation of system degradation.
空间探索材料的研究是国际空间机构最感兴趣的目标之一。实现轻质连接的一种重要工具是环氧胶粘剂(EA),它提供了一种具有聚合物链和交联复杂网络的弹性且坚固的材料。在这项工作中,展示了对由钴伽马辐射引起的商用双组分柔性EA(3M™ Scotch-Weld™ EC-2216 B/A Gray)的结构和化学改性的研究。结合不同的光谱技术,如傅里叶变换红外光谱(FTIR)、太赫兹时域光谱(TDS)和电子顺磁共振(EPR),对EA在电磁光谱不同区域的响应进行了表征,提供了有关辐照前后聚合物结构和化学性质的有价值信息。观察到聚合物链的同时解离和交联形成。在吸收剂量为10 kGy时,聚合物未发生结构改性,此时仅观察到瞬态自由基。不同的是,在100至500 kGy之间,观察到样品逐渐发生化学降解,同时出现宽且寿命长的EPR信号。这项研究还提供了对材料的微观表征,有助于评估系统降解的机制。