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首页> 外文期刊>Cellulose >Cellulosic bionanocomposites based on acrylonitrile butadiene rubber and Cuscuta reflexa: adjusting structure-properties balance for higher performance
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Cellulosic bionanocomposites based on acrylonitrile butadiene rubber and Cuscuta reflexa: adjusting structure-properties balance for higher performance

机译:基于丙烯腈丁二烯橡胶和CUSCUTA REFLEXA的纤维素核复合材料:调整结构性质平衡以获得更高的性能

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摘要

Design and manufacture of cellulosic nanocomposites with acceptable performance is in the period of a transition from fantasy to reality. Typically, cellulosic nanofillers reveal poor compatibility with polymer matrices. Thus, adjusting the balance between structure and properties of cellulosic bionanocomposites by careful selection of parent ingredients is the first priority. Herein, we incorporated Cuscuta reflexa derived cellulose nanofibers (CNFs) into acrylonitrile-butadiene rubber (NBR) for high-performance elastomeric applications. Tensile and tear strength of NBR improved by similar to 125 and similar to 105 %, respectively at a very low loading of 4 phr CNFs, as a result of interfacial bonding, as evidenced by fractographic analysis. In parallel, the temperature at which maximum degradation occurs (T-max) of NBR rose by 14 degrees C. The swelling index and molar uptake of toluene were also lowered. The Wolff-activity coefficient, hardness, abrasion resistance, and cross-link density were all improved correspondingly. The positive shift in glass transition temperature and the fall in the loss tangent peak height for bionanocomposites proved the effective immobilization of NBR chains by well-dispersed CNFs. The hydrogen bonding interaction between -OH groups of CNFs and -CN groups of NBR might be responsible for the superior performance of NBR/CNF composites, which is confirmed by Fourier transform infrared spectroscopy (FTIR) and X-ray diffraction analysis (XRD).
机译:具有可接受性能的纤维素纳米复合材料的设计和制造正处于从幻想到现实的过渡时期。通常,纤维素纳米填料与聚合物基质的相容性较差。因此,通过仔细选择母体成分来调整纤维素生物纳米复合材料的结构和性能之间的平衡是首要任务。在此,我们将菟丝子衍生的纤维素纳米纤维(CNF)并入丙烯腈-丁二烯橡胶(NBR)中,用于高性能弹性体应用。断口分析表明,在极低的4份CNF载荷下,由于界面结合,NBR的拉伸强度和撕裂强度分别提高了125%和105%。同时,NBR发生最大降解的温度(T-max)上升了14摄氏度。甲苯的溶胀指数和摩尔吸收量也降低了。Wolff活度系数、硬度、耐磨性和交联密度均相应提高。生物纳米复合材料的玻璃化转变温度的正移和损耗正切峰高度的下降证明了分散良好的CNF有效地固定了NBR链。傅立叶变换红外光谱(FTIR)和X射线衍射分析(XRD)证实,CNF的-OH基团和NBR的-CN基团之间的氢键相互作用可能是NBR/CNF复合材料性能优越的原因。

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