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首页> 外文期刊>Materials Chemistry Frontiers >Sustainable natural rubber composites: masterbatch development of epoxidized natural rubber grafted to designed enzymatic polysaccharides
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Sustainable natural rubber composites: masterbatch development of epoxidized natural rubber grafted to designed enzymatic polysaccharides

机译:可持续天然橡胶复合材料:环氧天然橡胶接枝到设计酶多糖的母粒开发

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摘要

Designed polysaccharides obtained from the enzymatic polymerization of sucrose, are employed as a sustainable, and functional reinforcing additive for rubber composites. The designed enzymatic polysaccharide used in this study is a semicrystalline, water-insoluble alpha 1,3-glucan. To facilitate the dispersion and bonding of an inherently polar filler in a nonpolar natural rubber matrix, this work employs an in situ melt process grafting of epoxidized natural rubber (ENR) onto the polysaccharide to achieve enhanced material properties. The temperature and shear-mediated melt grafting in the presence of two catalysts (i.e., sodium hydroxide (NaOH) and dicumyl peroxide (DCP)) were studied. Analytical characterization techniques, such as Fourier transform infrared spectroscopy, X-ray photoelectron spectroscopy, and solvent swelling was employed to validate the formation of covalent bonds between alpha1,3-glucan and ENR. Results indicate that the ENR-glucan composite using DCP provides improved properties. This formulation can be employed as a functional masterbatch for general NR composite formulations. The resulting NR-glucan-ENR formulation provided superior mechanical properties compared to incumbent reinforcing filler-based rubber formulations. These results suggest the potential utility of the polysaccharide for commercial deployment in products that benefit from improvements in mechanical and dynamic properties, in addition to overall composite weight reduction (e.g., transportation, shoe soles). Furthermore, the combination of a biosourced elastomer with a biobased reinforcing filler material technology provides an option to transition to a non-fossil composite system aligned with overall sustainability goals.
机译:设计得到的多糖蔗糖酶聚合的工作作为一个可持续,功能增强添加剂对橡胶复合材料。酶多糖在这项研究中的应用是一个半晶质的,不溶于水的α1, 3-glucan。结合本身的极性填料非极性天然橡胶矩阵,这项工作了一个原位融化过程使环氧化的嫁接天然橡胶(ENR)到多糖达到增强材料属性。温度和shear-mediated嫁接在融化两种催化剂的存在(例如,钠氢氧化(氢氧化钠)和过氧化二异丙苯(DCP))研究。傅里叶变换红外光谱学等x射线光电子能谱和溶剂肿胀是用来验证形成α1之间的共价键,3-glucan和位。综合使用DCP提供改进的属性。这个公式可以使用功能色母粒一般NR复合配方。配方提供优越的机械比现任强化属性filler-based橡胶配方。建议的潜在效用多糖为商业部署受益于改进的产品机械和动态属性,除了整体综合减肥(如交通、鞋鞋底)。一个biosource弹性体的组合biobased补强填充材料技术提供了一个选项来过渡到一个非化石复合系统与整体一致可持续发展的目标。

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