Fujisawa Shuji, Daicho Kazuho, Yurtsever Ayhan, Fukuma Takeshi, Saito Tsuguyuki
Department of Biomaterials Sciences, Graduate School of Agricultural and Life Sciences, The University of Tokyo, Tokyo, 1138657, Japan.
WPI Nano Life Science Institute (WPI-Nano LSI), Kanazawa University, Kakuma-machi, Kanazawa, 9201192, Japan.
Small. 2023 Jul;19(30):e2302276. doi: 10.1002/smll.202302276. Epub 2023 May 14.
Nanocellulose is attracting attention in the field of materials science as a sustainable building block. Nanocellulose-based materials, such as films, membranes, and foams, are fabricated by drying colloidal dispersions. However, little is known about how the structure of a single nanocellulose changes during the complex drying process. Here, all-atom molecular dynamics simulations and atomic force microscopy is used to investigate the structural dynamics of single nanocellulose during drying. It is found that the twist morphology of the nanocellulose became localized along the fibril axis during the final stage of the drying process. Moreover, it is shown that conformational changes at C6 hydroxymethyl groups and glycoside bond is accompanied by the twist localization, indicating that the increase in the crystallinity occurred in the process. It is expected that the results will provide molecular insights into nanocellulose structures in material processing, which is helpful for the design of materials with advanced functionalities.
纳米纤维素作为一种可持续的构建材料,正在材料科学领域引起关注。基于纳米纤维素的材料,如薄膜、膜和泡沫,是通过干燥胶体分散体来制备的。然而,对于单个纳米纤维素在复杂干燥过程中的结构变化知之甚少。在这里,使用全原子分子动力学模拟和原子力显微镜来研究单个纳米纤维素在干燥过程中的结构动力学。研究发现,在干燥过程的最后阶段,纳米纤维素的扭曲形态沿纤维轴局部化。此外,研究表明,C6羟甲基和糖苷键处的构象变化伴随着扭曲局部化,这表明在此过程中结晶度增加。预计这些结果将为材料加工中的纳米纤维素结构提供分子层面的见解,这有助于设计具有先进功能的材料。