首页> 外文期刊>The journal of physical chemistry, C. Nanomaterials and interfaces >Toward Atomic-Scale Inorganic Double Helices via Carbon Nanotube Matrices-Induction of Chirality to Carbon Nanotubes
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Toward Atomic-Scale Inorganic Double Helices via Carbon Nanotube Matrices-Induction of Chirality to Carbon Nanotubes

机译:通过碳纳米管矩阵 - 诱导碳纳米管的碳纳米管的原子尺度无机双螺旋

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摘要

SnIP, an atomic-scale inorganic double helix compound is composed of a hexagonal rod packing of double helices in the bulk phase. A racemic mixture of P- and M-SnIP double helices is energetically most favored and present in the solid. In order to evaluate if enantiomer-pure SnIP might be able to realize three different stacking models of seven chiral double helices, an enantiomer-pure, a 2:1, and a racemic 1:1 ratio were investigated according to their energies of formation. While a top-down approach did not lead to single isolated double helices, the development of a bottom-up approach might be beneficial. Motivated by templating strategies in confined geometries we performed first principles density functional theory ( DFT) calculations using carbon nanotubes (CNTs) featuring different electronic properties and suitable sizes as matrices to accommodate chiral SnIP double helices. With the aid of DFT, we determined the ideal diameter, stability, and electronic properties of different SnIP@CNT systems. Appropriate molecular starting materials and a feasible formation mechanism are identified based on chemical considerations. An interaction between the CNTs and the SnIP units is evident, causing structure and property modifications of the hybrids. The intercalation of SnIP into a suitable CNT leads to a gain in total energy compared to the isolated systems. Based on our findings, a straightforward way to introduce chirality in suitable CNTs via SnIP@CNT hybrids is feasible.
机译:Snip,原子刻度无机双螺旋化合物由批量相中的双螺旋的六边形杆填充组成。 P-和M XIP双螺旋的外消旋混合物能够大大青睐和存在于固体中。为了评估对映体 - 纯Snip可能能够实现七种手性双螺旋的三种不同堆叠模型,根据其能量对映体 - 纯,2:1和外消旋1:1的比例进行研究。虽然自上而下的方法没有导致单孤立的双螺旋,但自下而上的方法的发展可能是有益的。通过狭窄的几何形状中的模板策略来激励我们使用不同的电子特性和合适的尺寸作为矩阵来执行第一个原理的密度泛函理论(DFT)计算,以适应手性剪下双螺旋。借助DFT,我们确定了不同Snip @ CNT系统的理想直径,稳定性和电子特性。基于化学考虑,鉴定了适当的分子原料和可行的形成机制。 CNT与剪切单元之间的相互作用是明显的,导致混合动力车的结构和性能修改。与隔离系统相比,Snip进入合适的CNT的嵌入导致总能量的增益。基于我们的研究结果,通过Snip @ CNT杂交种在合适的CNT中引入手性的直接方式是可行的。

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