论文标题
多壁纳米管散开
Multiwalled nanotube faceting unravelled
论文作者
论文摘要
纳米管对小型化高级技术显示出巨大的希望。它们的异常物理特性与它们的形态和晶体结构密切相关。多壁纳米管的圆周面增强其机械强度并改变其摩擦学和电子特性。在这里,这种重要现象的性质是根据层间注册表模式完全合理化的。无论纳米管身份如何(即直径,手性,化学成分),刻面都需要相邻层的手性角度匹配。在临界直径上方与实验结果相对应的临界直径上方,Achiral多壁纳米管显示出均匀间隔的延伸轴向方面,其数量等于周向单位细胞中的层间差异。在实验中通常观察到的伸长的螺旋相位出现在表现出较小的层间手性角不匹配的纳米管中。当壁性不相关时,将抑制刻面的尺寸,而外层波(由MoiréSuprattice诱导)与实验一致。最后,我们提供了一个解释,以相对于其基于碳的氮化碳纳米管在多壁氮化硼纳米管中的较高发病率。
Nanotubes show great promise for miniaturizing advanced technologies. Their exceptional physical properties are intimately related to their morphological and crystal structure. Circumferential faceting of multiwalled nanotubes reinforces their mechanical strength and alters their tribological and electronic properties. Here, the nature of this important phenomenon is fully rationalized in terms of interlayer registry patterns. Regardless of the nanotube identity (that is, diameter, chirality, chemical composition), faceting requires the matching of the chiral angles of adjacent layers. Above a critical diameter that corresponds well with experimental results, achiral multiwalled nanotubes display evenly spaced extended axial facets whose number equals the interlayer difference in circumferential unit cells. Elongated helical facets, commonly observed in experiment, appear in nanotubes that exhibit small interlayer chiral angle mismatch. When the wall chiralities are uncorrelated, faceting is suppressed and outer layer corrugation, which is induced by the moiré superlattice, is obtained in agreement with experiments. Finally, we offer an explanation for the higher incidence of faceting in multiwalled boron nitride nanotubes with respect to their carbon-based counterparts.