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A process for deriving high quality cellulose nanofibrils from water hyacinth invasive species

机译:从水凝集物种中衍生高质量纤维素纳米纤维的方法

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In this study, surface chemistry, the morphological properties, water retention values, linear viscoelastic properties, crystallinity index, tensile strength and thermal properties of water hyacinth (WH) cellulose were correlated with the degree of mechanical processing under high-pressure homogenisation. An initial low-pressure mechanical shear of WH stems resulted in the ease of chemical extraction of good quality cellulose using mild concentrations of chemical reagents and ambient temperature. Further passes through the homogeniser resulted in an overall improvement in cellulose fibrillation into nanofibrils, and an increase in water retention property and linear viscoelastic properties as the number of passes increased. These improvements are most significant after the first and second pass, resulting in up to 7.5% increase in crystallinity index and 50% increase in the tensile strength of films, when compared with the unprocessed WH cellulose. The thermal stability of the WH cellulose was not adversely affected but remained stable with increasing number of passes. Results suggest a high suitability for this process to generate superior quality cellulose nanofibrils at relatively low energy requirements, ideal for sustainable packaging applications and as a structural component to bioplastic composite formulations.
机译:在该研究中,表面化学,形态学性质,水保留值,线性粘弹性性质,结晶度指数,抗拉伸强度和水纤维素(WH)纤维素的热性质与高压均质下的机械加工程度相关。 WH茎的初始低压机械剪切导致使用轻度浓度的化学试剂和环境温度易于化学提取优质纤维素。进一步通过均化器导致纤维素颤动的总体改善成纳米纤维,随着通过的次数的数量增加,水保持性能和线性粘弹性的增加。在第一和第二次通过后,这些改进最显着,导致结晶度指数的增加高达7.5%,与未处理的WH纤维素相比,薄膜的拉伸强度增加50%。 WH纤维素的热稳定性不会受到不利影响,但随着越来越多的通过而保持稳定。结果表明该方法的高适合性,以在相对低的能量要求下产生优质的纤维素纳米纤维,适用于可持续包装应用和作为生物复合配方的结构组分。

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