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首页> 外文期刊>Polymer Degradation and Stability >Interactions in multicomponent flame-retardant polymers: Solid-state NMR identifying the chemistry behind it
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Interactions in multicomponent flame-retardant polymers: Solid-state NMR identifying the chemistry behind it

机译:多组分阻燃聚合物中的相互作用:固态NMR识别其背后的化学成分

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Distinct approaches are used to reduce the fire risks of polymers, a key issue for many industrial applications. Among the variety of approaches, the use of synergy in halogen-free multicomponent systems is one of the most auspicious. To optimize the composition of such flame-retardant systems it is essential to understand the mechanisms and the corresponding chemistry in the condensed phase. In this work different methods are used, including cone calorimeter, thermogravimetry (TG), and TG-FTIR, with the main focus on the solid-state NMR analysis of the solid residues. The structural changes in the condensed phase of two thermoplastic elastomer systems based on copolymer styrene-ethylene-butadiene-styrene (TPE-S) were investigated: TPE-S/aluminium diethylphosphinate (AlPi)/magnesium hydroxide (MH) and TPE-S/AlPi/zinc borate (ZB)/poly(phenylene oxide) (PPO). Strong flame inhibition is synergistically combined with protective layer formation. ~(13)C-, ~(27)A1-, ~(11)B- and ~(31)P MAS NMR (magic angle spinning nuclear magnetic resonance) experiments using direct excitation with a single pulse and ~1H-~(31)P cross-polarization (CP) were carried out as well as double resonance techniques. Magnesium phosphates were formed during the pyrolysis of TPE-S/AlPi/MH, while for the system TPE-S/AlPi/ZB/PPO zinc phosphates and borophosphates were observed. Thus, the chemistry behind the chemical interaction was characterized unambiguously for the investigated systems.
机译:不同的方法可用来减少聚合物的着火危险,这是许多工业应用中的关键问题。在各种方法中,在无卤素的多组分系统中使用协同作用是最吉祥的方法之一。为了优化此类阻燃系统的组成,必须了解冷凝阶段的机理和相应的化学反应。在这项工作中,使用了不同的方法,包括锥形量热法,热重分析(TG)和TG-FTIR,主要关注固体残留物的固态NMR分析。研究了两种基于共聚物苯乙烯-乙烯-丁二烯-苯乙烯(TPE-S)的热塑性弹性体体系在冷凝相中的结构变化:TPE-S /二乙基次膦酸铝(AlPi)/氢氧化镁(MH)和TPE-S / AlPi /硼酸锌(ZB)/聚苯醚(PPO)。强烈的火焰抑制作用与保护层的形成协同作用。 〜(13)C-,〜(27)A1-,〜(11)B-和〜(31)P MAS NMR(磁角旋转核磁共振)实验,使用单脉冲和〜1H-〜(进行了31)P交叉极化(CP)以及双共振技术。在TPE-S / AlPi / MH的热解过程中形成了磷酸镁,而对于TPE-S / AlPi / ZB / PPO系统则观察到了磷酸锌和硼磷酸盐。因此,对于所研究的系统,化学相互作用背后的化学性质被明确地表征。

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