Research Institute for Sustainable Chemistry, Department of Materials and Chemistry, National Institute of Advanced Industrial Science and Technology (AIST), 3-11-32 Kagamiyama, Higashi-Hiroshima, Hiroshima 737-0046, Japan.
CNT-Application Research Center, National Institute of Advanced Industrial Science and Technology (AIST), 1-1-1 Higashi, Tsukuba, Ibaraki, 305-8565, Japan.
Int J Biol Macromol. 2019 Jan;121:989-995. doi: 10.1016/j.ijbiomac.2018.10.090. Epub 2018 Oct 17.
Cellulose nanofibers (CNFs) with different degrees of fibrillation are prepared by the mechanical fibrillation of kraft pulp using wet disk milling, and dispersions of the prepared CNFs were subjected to differential centrifugal sedimentation (DCS) in order to estimate the diameter distributions of the CNFs. The low-fibrillated CNFs (fiber diameter (d): >10 μm) had a weak reinforcing effect on natural rubber (NR), while the medium-fibrillated CNFs (d: 0.1-10 μm) dramatically improve the initial modulus and decrease the elongation at break. The high-fibrillated CNFs (d: <0.1 μm) enhanced the tensile strength even further while maintaining the elongation at break. The reinforcing mechanism of the NR composites reinforced by the CNFs (NR-CNFs) was confirmed by field-emission scanning electron microscopy imaging, dynamic mechanical analysis, and toluene uptake measurements. It was concluded that these characteristic mechanical properties of the NR-CNFs were determined by the morphologies of the CNFs. The branching structure of the medium-fibrillated CNFs affected high improvement of the initial modulus, and the network formed by the high-fibrillated CNFs were involved in enhancement of the tensile strength without compromising viscoelastic properties. Understanding the effect of their diameter distribution can potentially reduce the production cost of CNFs and thus expand their applicability.
采用湿盘式铣削机械法对牛皮纸浆进行纤维化处理,制备得到不同纤维化程度的纤维素纳米纤维(CNF),并对所制备的 CNF 分散体进行差速离心沉降(DCS),以评估 CNF 的直径分布。低纤维化的 CNF(纤维直径(d):>10μm)对天然橡胶(NR)的增强效果较弱,而中等纤维化的 CNF(d:0.1-10μm)则显著提高了初始模量并降低了断裂伸长率。高纤维化的 CNF(d:<0.1μm)进一步提高了拉伸强度,同时保持了断裂伸长率。通过场发射扫描电子显微镜成像、动态力学分析和甲苯吸收测量证实了 CNF 增强 NR 复合材料(NR-CNF)的增强机理。研究结论认为,这些 NR-CNF 的特征力学性能是由 CNF 的形态决定的。中等纤维化的 CNF 的分支结构对初始模量的显著提高有影响,而高纤维化的 CNF 形成的网络则参与了拉伸强度的提高,同时不会影响粘弹性。了解其直径分布的影响可以降低 CNF 的生产成本,从而扩大其适用性。