Abstract

Existing silicone elastomers (SR) are difficult to serve properly in extreme high and low temperature environments. Herein, through molecular dynamics (MD) simulations, a novel SR with wide temperature resistance range was designed using silicon-oxygen bonds (-Si-O-) to construct the backbone and side chains of polymer chains. Firstly, we investigated the cold and heat resistance of SR with various grafting density and side chain length. Three different approaches were utilized to estimate the glass transition temperature ( T g ) of SR, i.e., by calculating the volume, non-bonding energy, and conformational transitions rate of the torsion angle ( K T ). Also, the rate of change of mean square displacement (MSD) versus temperature was used to characterize the thermal decomposition temperature ( T d ) of this designed material. The results demonstrated that when the grafting density is high and the length of side chain is moderate, the elastomer has the best extreme temperature resistance, with T g and T d reaching below -140℃ and above 420℃ respectively. Then, SR pyrolysis was investigated by Reactive Force Field (ReaxFF) MD simulations. The dominant final products were CH 4 , H 2 , C 2 H 4 and siloxane. Finally, the introduction of SiO 2 nanoparticles improves the cold and heat resistance of the composite, with T g reaching about -150℃ and T d reaching above 450℃. In addition, the heterogeneous distribution of molecular chain conformational transitions demonstrated that the introduction of more nanoparticles resulted in the chain segments have more space for rotation, leading to decrease in T g . Arrhenius parameters were extracted through pyrolysis simulations, illustrating that the SiO 2 nanoparticles improves the thermal stability of nanocomposites. In general, our work could provide rational guidelines for the design and fabrication of novel polymeric materials with a wide temperature resistance range. • Silicon-oxygen bonds are used to build the backbone and side chains of polymer chains. • The rate of change of MSD versus temperature is employed to estimate the T d . • Novel silicone elastomer pyrolysis is investigated by ReaxFF-MD simulations. • The temperature resistance range of SR/SiO 2 nanocomposites is about -150℃ to 450℃.

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