Strommer Bettina, Schulze Dietmar, Schartel Bernhard, Böhning Martin
Bundesanstalt für Materialforschung und -Prüfung (BAM), Unter den Eichen 87, 12205 Berlin, Germany.
Polymers (Basel). 2022 Oct 16;14(20):4363. doi: 10.3390/polym14204363.
Tailored crosslinking in elastomers is crucial for their technical applications. The incorporation of nanoparticles with high surface-to-volume ratios not only leads to the formation of physical networks and influences the ultimate performance of nanocomposites, but it also affects the chemical crosslinking reactions. The influence of few-layer graphene (FLG) on the crosslinking behavior of natural rubber is investigated. Four different curing systems, two sulfur-based with different accelerator-to-sulfur ratios, and two peroxide-based with different peroxide concentrations, are combined with different FLG contents. Using differential scanning calorimetry (DSC), vulcametry (MDR) and swelling measurements, the results show an accelerating effect of FLG on the kinetics of the sulfur-based curing systems, with an exothermic reaction peak in DSC shifted to lower temperatures and lower scorch and curing times in the MDR. While a higher accelerator-to-sulfur ratio in combination with FLG leads to reduced crosslinking densities, the peroxide crosslinkers are hardly affected by the presence of FLG. The good agreement of crosslink densities obtained from the swelling behavior confirms the suitability of vulcameter measurements for monitoring the complex vulcanization process of such nanocomposite systems in a simple and efficient way. The reinforcing effect of FLG shows the highest relative improvements in weakly crosslinked nanocomposites.
弹性体中的定制交联对其技术应用至关重要。引入具有高比表面积的纳米颗粒不仅会导致物理网络的形成并影响纳米复合材料的最终性能,还会影响化学交联反应。研究了少层石墨烯(FLG)对天然橡胶交联行为的影响。将四种不同的硫化体系,即两种具有不同促进剂与硫比例的硫磺基体系和两种具有不同过氧化物浓度的过氧化物基体系,与不同的FLG含量相结合。通过差示扫描量热法(DSC)、硫化仪(MDR)和溶胀测量,结果表明FLG对硫磺基硫化体系的动力学具有加速作用,DSC中的放热反应峰移至较低温度,MDR中的焦烧和硫化时间缩短。虽然较高的促进剂与硫比例与FLG结合会导致交联密度降低,但过氧化物交联剂几乎不受FLG存在的影响。从溶胀行为获得的交联密度的良好一致性证实了硫化仪测量以简单有效的方式监测此类纳米复合材料体系复杂硫化过程的适用性。FLG的增强效果在弱交联纳米复合材料中显示出最高的相对改善。