Domato Diamond C, Munio Art Anthony Z, Jacosalem Naomi Jane P, Fuentes Dexter Rhys T, Ambolode Leo Cristobal C
Department of Physics, Mindanao State University-Iligan Institute of Technology, Iligan City 9200, Philippines.
Center for Nanoscience Research, Premier Research Institute of Science and Mathematics (PRISM), Mindanao State University-Iligan Institute of Technology, Iligan City 9200, Philippines.
Molecules. 2024 Oct 3;29(19):4693. doi: 10.3390/molecules29194693.
The success of composite materials is attributed to the nature of bonding at the nanoscale and the resulting structure-related properties. This study reports on the interaction, electronic, and optical properties of diamond nanothread/polymers (cellulose and epoxy) and boron nitride nanotube/calcium silicate hydrate composites using density functional theory modeling. Our findings indicate that the interaction between the nanothread and polymer is due to van der Waals-type bonding. Minor modifications in the electronic structures and absorption spectra are noticed. Conversely, the boron nitride nanotube-calcium silicate hydrate composite displays an electron-shared type of interaction. The electronic structure and optical absorption spectra of the diamond nanothread and boron nitride nanotube in all configurations studied in the aforementioned composite systems are well maintained. Our findings offer an electronic-level perspective into the bonding characteristics and electronic-optical properties of diamond nanothread/polymer and boron nitride nanotube/calcium silicate hydrate composites for developing next-generation materials.
复合材料的成功归因于纳米尺度的键合性质以及由此产生的与结构相关的性能。本研究使用密度泛函理论建模报告了金刚石纳米线/聚合物(纤维素和环氧树脂)以及氮化硼纳米管/硅酸钙水合物复合材料的相互作用、电子和光学性质。我们的研究结果表明,纳米线与聚合物之间的相互作用是由于范德华型键合。电子结构和吸收光谱有轻微变化。相反,氮化硼纳米管 - 硅酸钙水合物复合材料表现出电子共享型相互作用。在上述复合体系中研究的所有构型下,金刚石纳米线和氮化硼纳米管的电子结构和光吸收光谱都得到了很好的保持。我们的研究结果为开发下一代材料的金刚石纳米线/聚合物和氮化硼纳米管/硅酸钙水合物复合材料的键合特性以及电子 - 光学性质提供了电子层面的视角。