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首页> 外文期刊>Polymer bulletin >Synthesis, thermal stability and kinetic decomposition of triblock copolymer polypropylene glycol-poly glycidyl nitrate-polypropylene glycol (PPG-PGN-PPG)
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Synthesis, thermal stability and kinetic decomposition of triblock copolymer polypropylene glycol-poly glycidyl nitrate-polypropylene glycol (PPG-PGN-PPG)

机译:三嵌段共聚物聚丙二醇 - 聚乙二醇酯 - 聚丙二醇(PPG-PGN-PPG)的合成,热稳定性和动力学分解

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摘要

An energetic triblock copolymer PPG-PGN-PPG (M-n = 1886 g mol(-1)) was synthesized for the first time by cationic ring-opening polymerization of propylene oxide with low molecular weight poly glycidyl nitrate (PGN) (M-n = 1061 g mol(-1)) as a macroinitiator, in the presence of boron trifluoride etherate (BF3 center dot OEt2) as the catalyst. The product obtained in high yield was characterized by FTIR, gel permeation chromatography and 1H and 13C NMR spectroscopy. The thermal properties of the triblock copolymer were characterized by differential scanning calorimeter (DSC). The result approved that the glass transition temperature of the triblock copolymer (T-g = - 58 degrees C) is lower than PGN (T-g = - 35 degrees C); also, it was more stable than that of PGN. The effect of heating rates (10, 20, 30 and 40 degrees C min(-1)) on the decomposition of the copolymer was evaluated. The decomposition temperature of this compound increased as the heating rate increased. The kinetic parameters such as activation energy and frequency factor for the thermal decomposition of the triblock copolymer were obtained from the DSC and DTG data by non-isothermal methods proposed by the ASTM E696, Flynn-Wall-Ozawa (FWO) and Kissinger methods. The values by the FWO method are in good agreement with ASTM and Kissinger methods.
机译:通过阳离子环开环聚合的环氧丙烷与低分子量聚缩水甘油酯(PGN)(MN = 1061g,首次通过阳离子环开环聚合来合成活性三嵌段共聚物PPG-PGN-PPG(Mn = 1886g mol(-1))(Mn = 1061g Mol(-1))作为大型杀菌剂,在三氟化硼醚酯(BF3中心点OET2)的存在中作为催化剂。通过FTIR,凝胶渗透色谱和1H和13C NMR光谱表征以高产率获得的产物。通过差示扫描量热计(DSC)表征三嵌段共聚物的热性质。结果批准了三嵌段共聚物(T-G = - 58℃)的玻璃化转变温度低于PGN(T-G = - 35℃);此外,它比PGN更稳定。评价加热速率(10,20,30和40摄氏度(-1))对共聚物分解的影响。随着加热速率的增加,该化合物的分解温度增加。通过ASTM E696,Flynn-Wall-ozawa(FWO)和Kissinger方法提出的非等温方法,从DSC和DTG数据获得诸如Triblock共聚物热分解的活化能量和频率系数的动力学参数。 FWO方法的值与ASTM和Kissinger方法良好。

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