Wise Heather G, Takana Hidemasa, Ohuchi Fumio, Dichiara Anthony B
School of Environmental & Forest Sciences, University of Washington, Seattle 98195, United States.
Insititue of Fluid Science, Tohoku University, Sendai 980-8577, Japan.
ACS Appl Mater Interfaces. 2020 Jun 24;12(25):28568-28575. doi: 10.1021/acsami.0c07272. Epub 2020 Jun 9.
The continuous production of macroscale filaments of 17 μm in diameter comprising aligned TEMPO-oxidized cellulose nanofibrils (CNFs) is conducted using a field-assisted flow-focusing process. The effect of an AC external field on the material's structure becomes significant at a certain voltage, beyond which augmentations of the CNF orientation factor up to 16% are obtained. Results indicate that the electric field significantly contributes to improve the CNF ordering in the bulk, while the CNF alignment on the filament surface is only slightly affected by the applied voltage. X-ray diffraction shows that CNFs are densely packed anisotropically in the plane parallel to the filament axis without any preferential out of plane orientation. The improved nanoscale ordering combined with the tight CNF packing yields impressive enhancements in mechanical properties, with stiffness up to 25 GPa and more than 63% (up to 260 MPa), 46% (up to 2.8%), and 120% (up to 4.7 kJ/m) increase in tensile strength, strain-to-failure, and toughness, respectively. This study demonstrates for the first time the control over the structural ordering of anisotropic nanoparticles in a dynamic system using an electric field, which can have important implications for the development of sustainable alternatives to synthetic textiles.
利用场辅助流动聚焦工艺连续生产直径为17μm的宏观长丝,该长丝由排列的TEMPO氧化纤维素纳米纤维(CNF)组成。在一定电压下,交流外场对材料结构的影响变得显著,超过该电压后,CNF取向因子可提高16%。结果表明,电场对改善本体中CNF的有序性有显著贡献,而施加电压对长丝表面CNF的排列影响较小。X射线衍射表明,CNF在平行于长丝轴的平面内呈各向异性密集堆积,在平面外没有任何优先取向。纳米级有序性的改善与紧密的CNF堆积相结合,使机械性能得到显著提高,刚度高达25GPa,拉伸强度、断裂应变和韧性分别提高63%以上(高达260MPa)、46%(高达2.8%)和120%(高达4.7kJ/m)。本研究首次展示了利用电场对动态系统中各向异性纳米颗粒的结构有序性进行控制,这对开发合成纺织品的可持续替代品可能具有重要意义。