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首页> 外文期刊>ACS nano >Carbyne from first principles: Chain of c atoms, a nanorod or a nanorope
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Carbyne from first principles: Chain of c atoms, a nanorod or a nanorope

机译:第一原理的卡宾:碳原子链,纳米棒或纳米绳

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We report an extensive study of the properties of carbyne using first-principles calculations. We investigate carbyne's mechanical response to tension, bending, and torsion deformations. Under tension, carbyne is about twice as stiff as the stiffest known materials and has an unrivaled specific strength of up to 7.5 × 107 N·m/kg, requiring a force of ~10 nN to break a single atomic chain. Carbyne has a fairly large room-temperature persistence length of about 14 nm. Surprisingly, the torsional stiffness of carbyne can be zero but can be "switched on" by appropriate functional groups at the ends. Further, under appropriate termination, carbyne can be switched into a magnetic semiconductor state by mechanical twisting. We reconstruct the equivalent continuum elasticity representation, providing the full set of elastic moduli for carbyne, showing its extreme mechanical performance (e.g., a nominal Young's modulus of 32.7 TPa with an effective mechanical thickness of 0.772 ?). We also find an interesting coupling between strain and band gap of carbyne, which is strongly increased under tension, from 2.6 to 4.7 eV under a 10% strain. Finally, we study the performance of carbyne as a nanoscale electrical cable and estimate its chemical stability against self-aggregation, finding an activation barrier of 0.6 eV for the carbyne-carbyne cross-linking reaction and an equilibrium cross-link density for two parallel carbyne chains of 1 cross-link per 17 C atoms (2.2 nm).
机译:我们报告使用第一性原理计算的对卡宾性质的广泛研究。我们研究了卡宾对拉伸,弯曲和扭转变形的机械响应。在张力作用下,卡宾钢的刚度约为最坚硬材料的两倍,比强度高达7.5×107 N·m / kg,这是无与伦比的,需要约10 nN的力才能破坏一条原子链。卡宾具有约14 nm的相当大的室温持久长度。出乎意料的是,卡宾的抗扭刚度可以为零,但可以通过末端的适当官能团“接通”。此外,在适当的终止下,可以通过机械扭转将卡宾转变成磁性半导体状态。我们重建了等效的连续弹性表示形式,为carbyne提供了完整的弹性模量,显示了其极端的机械性能(例如,名义杨氏模量为32.7 TPa,有效机械厚度为0.772?)。我们还发现了卡宾炔的应变与带隙之间的一个有趣的耦合,在10%的应变下,它在张力作用下从2.6 eV急剧增加到4.7 eV。最后,我们研究了单相碳纳米管作为纳米级电缆的性能,并评估了其对自聚集的化学稳定性,发现了单相碳纳米管-单相碳纳米管交联反应的活化能垒为0.6 eV,两个平行的单相碳纳米管的平衡交联密度为每17个C原子(2.2 nm)具有1个交联链。

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