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Influence of synthesized nano-ZnO on cure and physico-mechanical properties of SBR/BR blends

机译:合成纳米ZnO对SBR / Br混合的固化和物理性能的影响

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This study focuses on the synthesis of zinc oxide (ZnO) nanoparticles by high temperature calcination as well as low-temperature hydrolysis methods and their efficiency as cure activator in styrene-butadiene rubber/polybutadiene rubber blend. The synthesized nano-ZnO samples were characterized by means of X-ray diffraction, BET surface area and transmission electron microscopy. The synthesized nano-ZnO samples had wurtzite structure and average particle size in the ‘nm’ range. ZnO nanoparticles, synthesized on sepiolite template, were of smallest particle size (maximum number of particles in the range of 7–12?nm) and highest surface area (104?m2g?1). Polyethylene glycol (PEG)-6000 coated ZnO nanoparticles had rod-like structure; average diameter of the rods was 50?nm. In the case of PEG-coated ZnO containing compounds, optimum cure time of the blend was decreased by 5?min compared to that of standard rubber grade-ZnO containing compound (used as reference). Optimum cure time was lowered by 7–10?min in the case of synthesized nano-ZnO containing compounds compared to the reference ZnO based compound in presence of conventional filler, carbon black. It was also observed from ICP-OES analysis that the presence of very little amount of magnesium in one of the synthesized ZnO has noticeable impact on cure properties. PEG-coated ZnO increased the tensile strength of gum vulcanizates by 28% compared to the reference ZnO, acting as nanofiller at 3 phr loading. The study of curing behavior in dynamic condition was carried out using DSC. The results differ slightly from static curing except PEG modified nano-ZnO. Use of ZnO nanoparticles could provide faster crosslinking, better reinforcement at lower concentration compared to reference ZnO.
机译:该研究侧重于通过高温煅烧和低温水解方法合成氧化锌(ZnO)纳米颗粒及其作为苯乙烯 - 丁二烯橡胶/聚丁二烯橡胶混合物中固化活化剂的效率。通过X射线衍射,BET表面积和透射电子显微镜表征合成的纳米ZnO样品。合成的纳米ZnO样品具有紫立岩结构和“NM”范围的平均粒度。在Sepiolite模板上合成的ZnO纳米颗粒具有最小的粒度(7-12Ω·Nm的最大颗粒数)和最高表面积(104Ω·m2g≤1)。聚乙二醇(PEG)-6000涂覆的ZnO纳米颗粒具有棒状结构;杆的平均直径为50Ω·Nm。在含PEG涂覆的ZnO化合物的情况下,与含标准橡胶级 - ZnO的化合物(用作参考)相比,共混物的最佳固化时间为5〜min。在与在常规填料存在下的参考ZnO基化合物相比,在合成的纳米ZnO化合物的情况下,优化的固化时间在合成的纳米ZnO化合物的情况下降低了7-10?分钟。还从ICP-OES分析中观察到,其中一个合成的ZnO中的镁的存在非常少量的镁对固化性能产生显着的影响。与参考ZnO相比,PEG涂覆的ZnO通过28%提高了胶硫化胶的拉伸强度,作为纳米填充物,在3phrl荷载下作为纳米填充物。使用DSC进行动态条件下固化行为的研究。除了PEG改性纳米ZnO之外,结果略微不同于静态固化。与参考ZnO相比,ZnO纳米粒子的使用可以提供更快的交联,更低的浓度增强。

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