Norrrahim Mohd Nor Faiz, Ariffin Hidayah, Yasim-Anuar Tengku Arisyah Tengku, Hassan Mohd Ali, Ibrahim Nor Azowa, Yunus Wan Md Zin Wan, Nishida Haruo
Department of Bioprocess Technology, Faculty of Biotechnology and Biomolecular Sciences, Universiti Putra Malaysia, UPM, Serdang 43400, Malaysia.
Research Center for Chemistry Defence, Universiti Pertahanan Nasional Malaysia, Kem Perdana Sungai Besi, Kuala Lumpur 57000, Malaysia.
Polymers (Basel). 2021 Mar 28;13(7):1064. doi: 10.3390/polym13071064.
Residual hemicellulose could enhance cellulose nanofiber (CNF) processing as it impedes the agglomeration of the nanocellulose fibrils and contributes to complete nanofibrillation within a shorter period of time. Its effect on CNF performance as a reinforcement material is unclear, and hence this study seeks to evaluate the performance of CNF in the presence of amorphous hemicellulose as a reinforcement material in a polypropylene (PP) nanocomposite. Two types of CNF were prepared: SHS-CNF, which contained about 11% hemicellulose, and KOH-CNF, with complete hemicellulose removal. Mechanical properties of the PP/SHS-CNF and PP/KOH-CNF showed an almost similar increment in tensile strength (31% and 32%) and flexural strength (28% and 29%) when 3 wt.% of CNF was incorporated in PP, indicating that hemicellulose in SHS-CNF did not affect the mechanical properties of the PP nanocomposite. The crystallinity of both PP/SHS-CNF and PP/KOH-CNF nanocomposites showed an almost similar value at 55-56%. A slight decrement in thermal stability was seen, whereby the decomposition temperature at 10% weight loss () of PP/SHS-CNF was 6 °C lower at 381 °C compared to 387 °C for PP/KOH-CNF, which can be explained by the degradation of thermally unstable hemicellulose. The results from this study showed that the presence of some portion of hemicellulose in CNF did not affect the CNF properties, suggesting that complete hemicellulose removal may not be necessary for the preparation of CNF to be used as a reinforcement material in nanocomposites. This will lead to less harsh pretreatment for CNF preparation and, hence, a more sustainable nanocomposite can be produced.
残留半纤维素可促进纤维素纳米纤维(CNF)的加工,因为它能阻碍纳米纤维素原纤维的团聚,并有助于在更短的时间内实现完全纳米纤维化。其作为增强材料对CNF性能的影响尚不清楚,因此本研究旨在评估在聚丙烯(PP)纳米复合材料中,作为增强材料的无定形半纤维素存在时CNF的性能。制备了两种类型的CNF:含有约11%半纤维素的SHS-CNF和完全去除半纤维素的KOH-CNF。当在PP中加入3 wt.%的CNF时,PP/SHS-CNF和PP/KOH-CNF的机械性能显示出拉伸强度(分别为31%和32%)和弯曲强度(分别为28%和29%)几乎相似的增加,这表明SHS-CNF中的半纤维素不影响PP纳米复合材料的机械性能。PP/SHS-CNF和PP/KOH-CNF纳米复合材料的结晶度在55 - 56%时几乎相似。热稳定性略有下降,PP/SHS-CNF在失重10%时的分解温度为381℃,比PP/KOH-CNF的387℃低6℃,这可以用热不稳定半纤维素的降解来解释。本研究结果表明,CNF中存在一定比例的半纤维素不影响CNF性能,这表明在制备用作纳米复合材料增强材料的CNF时,可能不需要完全去除半纤维素。这将导致CNF制备的预处理不那么苛刻,因此可以生产出更具可持续性的纳米复合材料。