氰酸酯
碳硼烷
热稳定性
热固性聚合物
固化(化学)
热重分析
材料科学
烧焦
环氧树脂
玻璃化转变
化学
热解
复合材料
化学工程
有机化学
聚合物
工程类
作者
Shailja Goyal,Michael Forrester,Danielle Coverdell,Sabrina Torres,Mark W. Lee,Eric W. Cochran
出处
期刊:Macromolecules
[American Chemical Society]
日期:2021-09-21
卷期号:54 (19): 9155-9164
被引量:40
标识
DOI:10.1021/acs.macromol.1c01410
摘要
Cyanate ester (CE) is an important class of materials among high-temperature performance thermosets. It is used in aerospace launch vehicles, heat sinks, booms, and trusses of satellites etc. due to its high glass transition temperatures (>220°C), excellent thermal stability, and low flammability. Current approaches to improve the thermal stability of CE include incorporation of siloxanes or phosphorus- based flame retardants (PFRs). In this work, we have explored boron-based hydroxy (PD) and epoxy (EP) functionalized carborane additives to improve the thermal properties of CE. Carborane fillers were solvent blended at various mass loadings in the resin and cured to study their effect on thermal properties. PD and EP carboranes react with CE to form iminocarbonate and oxazolidinone linkages respectively. Cure kinetics studies at different wt% loadings explained that carboranes catalyze the curing reaction by reducing curing activation energy by about 54% and 26% for 10 wt% loadings of PD and EP carboranes respectively. In addition, carborane-filled cyanate ester (CE) nanocomposites demonstrate an exceptionally high thermal stability as compared to the pristine resin in air and inert environment. Our thermogravimetric analysis (TGA) experiments show that the ultimate char yield of the resin can be increased from 0% to as high as 76% and 82% with 30 wt% PD and EP carborane loading respectively at 1000 °C in air. The initial degradation temperature T<sub>d;5</sub> of the composites decreased with increasing carborane loadings in both air and argon. For instance, T<sub>d;5</sub> for CE was 465 and 471.6 °C in argon and air while that for P20 was 437.4 and 452.1 °C. Modulated TGA studies gave evidence of the effect of carboranes on degradation kinetics and the mechanism of the resin in air and inert environment. The effect of bonding between carboranes and CE at various loadings on the thermal expansion of the matrix was also studied using Thermomechanical Analyzer (TMA). PD carborane reduced the T<sub>g</sub> for P20 to about 225 °C while CE had T<sub>g</sub> >350 °C.
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