Lin Cheng-Te, Lee Chi-Young, Chiu Hsin-Tien, Chin Tsung-Shune
Department of Materials Science and Engineering, and Nano and Materials Science Center, National Tsing Hua University, Hsinchu, 30013, Taiwan.
Langmuir. 2007 Dec 18;23(26):12806-10. doi: 10.1021/la701949k. Epub 2007 Nov 15.
Carbon nanoparticles, like nanocones and nanodiscs, can be obtained by mechanical treatment of carbon nanofilaments. Microstructural studies suggest that in nanocones the conical graphene stacking with progressively increasing apex (cone) angles does not fully agree with current theoretical geometry models, such as a closed cones model and a cone-helix model. The unusual stacking form of nanocones was taken into account in a modified cone-helix model. The formation mechanism of the distinctive microstructure is attributed to the inclined anchoring effect, and the relaxation of internal stresses, which were induced by the confined pyrolysis process, resulting in easier disintegration by sonication the nanofilaments. This is disclosed for the first time in literature regarding the attainment of uniform carbon nanoparticles.
碳纳米颗粒,如纳米锥和纳米盘,可以通过对碳纳米丝进行机械处理来获得。微观结构研究表明,在纳米锥中,具有逐渐增大的顶点(锥)角的锥形石墨烯堆叠与当前的理论几何模型,如封闭锥模型和锥螺旋模型并不完全一致。在改进的锥螺旋模型中考虑了纳米锥不寻常的堆叠形式。这种独特微观结构的形成机制归因于倾斜锚固效应以及由受限热解过程引起的内应力松弛,这使得纳米丝在超声处理下更容易分解。这是关于获得均匀碳纳米颗粒的文献中首次披露的内容。