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Interaction Mechanism of Biomolecules on Vacancy Defected 2D Materials

机译:生物分子的相互作用机理缺陷2D材料

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In this work, we present a first principles study of the adsorption of Adenine which is a nucleobases, Histide and Leucine molecules, which are the amino acids, on vacancy defected single layer materials such as graphene and phosphorene. Among these materials, graphene, which is a single layer honeycomb structure of carbon. Also, phosphorene is recently synthesized by mechanical exfoliation of the black phosphorus. Phosphorene forming a puckered honeycomb structure similar to silicene. However, unlike zero-bandgap graphene and silicene, phosphorene is a direct band gap semiconductor, which makes it very attractive for the nanoelectronic devices. According to the studies, local defects can always exist at any temperature. The most probable defect type is the single vacancy in the single layer honeycomb structures. Vacancy defects can be emerged during growth process and they change the properties of materials significantly. In this study, we show that how to manipulate interaction and binding mechanisms of biomolecules with 2D materials with increased chemical activity by vacancy defects.
机译:在这项工作中,我们提出了一种研究腺嘌呤吸附的第一个原理研究,该原理是一种核碱基,种类和亮氨酸分子,即氨基酸,空位缺陷诸如石墨烯和磷烯等单层材料。在这些材料中,石墨烯是碳的单层蜂窝结构。此外,最近通过黑磷的机械剥离来合成磷烯。磷烯形成与硅氏相似的褶皱蜂窝结构。然而,与零带隙石墨烯和硅片不同,磷烯是直接带隙半导体,这使得对于纳米电子器件非常有吸引力。根据研究,局部缺陷总是存在于任何温度。最可能的缺陷类型是单层蜂窝结构中的单个空位。在生长过程中,可以出现空位缺陷,并显着改变材料的性质。在这项研究中,我们表明如何通过空位缺陷来操纵用2D材料的生物分子的相互作用和结合机制,通过空位缺陷增加化学活性。

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