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Core charge distribution and self assembly of columnar phases: the case of triphenylenes and azatriphenylenes

机译:柱状相的核电荷分布和自组装:三亚苯基和氮杂三亚苯基的情况

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Background The relation betweeen the structure of discotic molecules and columnar properties, a crucial point for the realization of new advanced materials, is still largely unknown. A paradigmatic case is that hexa-alkyl-thio substituted triphenylenes present mesogenic behavior while the corresponding azatriphenylenes, similar in shape and chemical structure, but with a different core charge distribution, do not form any liquid crystalline mesophase. This study is aimed at investigating, with the help of computer simulations techniques, the effects on phase behaviour of changes of the charge distribution in the discotic core. Results We described the shape and the pair, dispersive and electrostatic, interactions of hexa alkyl triphenylenes by uniaxial Gay-Berne discs with embedded point charges. Gay-Berne parameters were deduced by fitting the dispersive energies obtained from an atomistic molecular dynamics simulation of a small sample of hexa-octyl-thio triphenylene molecules in columnar phase, while a genetic algorithm was used to get a minimal set of point charges that properly reproduces the ab anitio electrostatic potential. We performed Monte Carlo simulations of three molecular models: the pure Gay-Berne disc, used as a reference, the Gay-Berne disc with hexa-thio triphenylene point charges, the Gay-Berne disc with hexa-thio azatriphenylene point charges. The phase diagram of the pure model evidences a rich polymorphism, with isotropic, columnar and crystalline phases at low pressure, and the appearance of nematic phase at higher pressure. Conclusion We found that the intermolecular electrostatic potential among the cores is fundamental in sta-bilizing/destabilizing columnar phases; in particular the triphenylene charge distribution stabilizes the columnar structure, while the azatriphenylene distribution suppresses its formation in favor of the nematic phase. We believe the present model could be successfully employed as the basis for coarse-grained level simulations of a wider class of triphenylene derivatives.
机译:背景盘状分子的结构与柱状性质之间的关系,是实现新的先进材料的关键点,目前仍然未知。一个典型的例子是六烷基硫基取代的亚联苯具有介晶行为,而形状和化学结构相似但核心电荷分布不同的相应的氮杂三苯并没有形成任何液晶中间相。这项研究旨在借助计算机模拟技术研究盘状核中电荷分布变化对相位行为的影响。结果我们描述了带有嵌入点电荷的单轴Gay-Berne圆盘的六烷基三亚苯基的形状和配对,色散和静电相互作用。通过拟合从圆柱状相的一小部分六辛基硫代苯并菲分子的原子分子动力学模拟获得的色散能量来推导Gay-Berne参数,同时使用遗传算法来获得一组适当的最小点电荷再现绝对花样静电势。我们对三个分子模型进行了蒙特卡洛模拟:用作参考的纯Gay-Berne圆盘,带有六硫代三亚苯基点电荷的Gay-Berne圆盘,带有六硫代三氮杂苯并菲点电荷的Gay-Berne圆盘。纯模型的相图显示出丰富的多态性,在低压下具有各向同性,柱状和结晶相,而在高压下则具有向列相。结论我们发现,核之间的分子间静电势是稳定/不稳定柱状相的基础。特别是三亚苯基的电荷分布稳定了柱状结构,而氮杂三亚苯基的分布则抑制了它的形成,有利于向列相。我们认为,本模型可以成功地用作更广泛的三亚苯基衍生物的粗粒度级模拟的基础。

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