2018 Spring Meeting and 14th Global Congress on Process Safety
(81d) Optimal Reaction Design of Alkoxy Silane Copolymers Using Design of Experiment Methods
Authors
In this study, we applied the design of experiment methods (DOE) to gain a systematic understanding of the effect of different factors such as acid catalyst concentration, water to alkoxy silanes ratio, alkoxy silane monomers ratio, and condenser flow rate on the copolymer physical properties and structural chemistry. Here, poly(MTMS-co-TEOS), with the range of weight average molecular weight of 3000-6000 gmole-1, was synthesized. The effect of reaction parameters and their interactions were studied through using different characterization methods such as TGA-IR, AFM-IR, NMR spectroscopies to achieve the optimal reaction condition for manufacturing products within the specification limits. It was found that increasing the ratio of condensation rate to hydrolysis rate and using a high ratio of trimethoxymethylsilane (MTMS) to tetraethoxysilane (TEOS) monomers induce a transition in the molecular structure and favors formation of random and cage structures, which can be attributed to defects, to linear ones. Moreover, we found out that acid addition rate has the strong influence on the formation of defects. We concluded that the formation of random and cage structures can be suppressed through increasing the condensation rate, improving the mixing rate, and controlling the addition rate of the acid catalyst.
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