论文标题
无序的超平均准1D材料
Disordered Hyperuniform Quasi-1D Materials
论文作者
论文摘要
碳纳米管是具有较高运输,机械,光学和化学特性的准二维系统。在这项工作中,我们概括了无序过度均匀性的概念,这是一种最近发现的带有隐藏长距离顺序的异国情调状态,以准确的一维材料。作为概念证明,我们将广义框架应用于量化包含随机分布的石 - 孔缺陷的无定形碳纳米管中的密度波动。我们证明了所有这些无定形纳米管都是非常明显的,即,这些系统的无限波长密度波动被完全抑制,无论直径,滚动轴,滚动板的数量,滚动板的数量和纳米管的缺陷分数。我们发现,这些无定形纳米管比具有定期分布的石 - 孔缺陷的纳米管更稳定。此外,由于随机引入了足够多的缺陷,因此某些半导体无缺陷的碳纳米管变为金属。这项对无定形纳米管的结构研究增强了我们对这些系统的基本理解,并提出了可能的外来物理特性,因为它们的超均匀性无序。我们的发现还阐明了降维降低对材料超均匀性能的影响。
Carbon nanotubes are quasi-one-dimensional systems that possess superior transport, mechanical, optical, and chemical properties. In this work, we generalize the notion of disorder hyperuniformity, a recently discovered exotic state of matter with hidden long-range order, to quasi-one-dimensional materials. As a proof of concept, we then apply the generalized framework to quantify the density fluctuations in amorphous carbon nanotubes containing randomly distributed Stone-Wales defects. We demonstrate that all of these amorphous nanotubes are hyperuniform, i.e., the infinite-wavelength density fluctuations of these systems are completely suppressed, regardless of the diameter, rolling axis, number of rolling sheets, and defect fraction of the nanotubes. We find that these amorphous nanotubes are energetically more stable than nanotubes with periodically distributed Stone-Wales defects. Moreover, certain semiconducting defect-free carbon nanotubes become metallic as sufficiently large amounts of defects are randomly introduced. This structural study of amorphous nanotubes strengthens our fundamental understanding of these systems, and suggests possible exotic physical properties, as endowed by their disordered hyperuniformity. Our findings also shed light on the effect of dimensionality reduction on the hyperuniformity property of materials.