论文标题
官能团在[n] - 碳酸酯上的共价吸附
Covalent Adsorption of functional groups on [N]-carbophenes
论文作者
论文摘要
从平面分子1,3,5-三羟基苯苯,Du等人开始。据报道,合成了几种可能的2D材料之一:石墨烯基或3-荷苯。 3-迦苯烷是新型二维共价有机框架的成员,[n] - 碳烯(碳苯甲酸苯)。使用高吞吐量方法,我们用羟基(OH),Carbonyl(CO),Nitro(NO $ _2 $),Amine(NH $ _2 $),Carboxyl(COOH),Carboxyl(COOH)替代水力发电剂的替代水力发生的甲求羟基(OH),计算了3-,4-,5-和6-碳酸盐的形成能和传导性能。五百九个结构具有随机挑选的基序,研究了每个细胞单个功能组的功能化到完全官能化的结构。我们的结果表明,当功能群的类型和碳苯烷类型保持恒定时,功能化和形成能力之间的线性关系是负面的。通过功能化的形成能量减少使DU的合成功能化的3-碳酚更可信。碳苯,功能组的类型和功能化程度都在材料的带结构中起作用。例如,CO官能团可能导致固定到费米水平的中间差异状态,而所研究的其他官能团则保持原始羧烯的半导体性质。因此,由于羰基官能团经常存在于缺陷的碳系统中,因此应注意限制带隙很重要的碳苯甲量量。因此,这项工作加强了Junkermeier等人的假设,即Du等人。合成的3-迦苯烯而不是石墨烯基。
Starting from the planar molecule 1,3,5-trihydroxybenzene, Du et al. reported synthesizing one of a couple of possible 2D materials: graphenylene or 3-carbophene. 3-carbophene is a member of a novel class of two-dimensional covalent organic framework, [N]-carbophenes (carbophenes). Using a high throughput method, we computed the formation energies and conduction properties of 3-, 4-, 5-, and 6-carbophenes with hydroxyl (OH), carbonyl (CO), nitro (NO$_2$), amine (NH$_2$), carboxyl (COOH) functional groups replacing hydrogen terminating agents. Five hundred and nine structures with randomly picked motifs, with functionalizations from a single functional group per cell to fully functionalized were studied. Our results demonstrate a negatively sloped linear relationship between the degree of functionalization and formation energy when the type of functional group and type of carbophene are held constant. The decrease in formation energy with functionalization makes Du's synthesis of functionalized 3-carbophene more creditable. The type of carbophene, type of functional group, and the degree of functionalization all play a role in the band structure of the materials. For example, CO functional groups may lead to a mid-gap state pinned to the Fermi level, whereas the other functional groups studied keep the semiconducting nature of pristine carbophene. Thus, because carbonyl functional groups are often present in defected carbon systems, care should be taken to limit the amount of oxygen in carbophene devices where the band gap is important. Thus, this work strengthens the hypothesis of Junkermeier et al.'s hypothesis that Du et al. synthesized 3-carbophene and not graphenylene.