de-la-Huerta-Sainz Sergio, Ballesteros Angel, Cordero Nicolás A
Physics Department, Universidad de Burgos, 09001 Burgos, Spain.
International Research Center in Critical Raw Materials for Advanced Industrial Technologies (ICCRAM), Unversidad de Burgos, 09001 Burgos, Spain.
Micromachines (Basel). 2023 Oct 31;14(11):2035. doi: 10.3390/mi14112035.
The recent and continuous research on graphene-based systems has opened their usage to a wide range of applications due to their exotic properties. In this paper, we have studied the effects of an electric field on curved graphene nanoflakes, employing the Density Functional Theory. Both mechanical and electronic analyses of the system have been made through its curvature energy, dipolar moment, and quantum regeneration times, with the intensity and direction of a perpendicular electric field and flake curvature as parameters. A stabilisation of non-planar geometries has been observed, as well as opposite behaviours for both classical and revival times with respect to the direction of the external field. Our results show that it is possible to modify regeneration times using curvature and electric fields at the same time. This fine control in regeneration times could allow for the study of new phenomena on graphene.
近期对基于石墨烯的系统的持续研究,因其独特性质而使其在广泛的应用领域得以使用。在本文中,我们运用密度泛函理论研究了电场对弯曲石墨烯纳米片的影响。通过系统的曲率能、偶极矩和量子再生时间,以垂直电场的强度和方向以及薄片曲率为参数,对系统进行了力学和电子分析。已观察到非平面几何形状的稳定,以及经典时间和复兴时间相对于外场方向的相反行为。我们的结果表明,同时利用曲率和电场来改变再生时间是可能的。这种对再生时间的精细控制能够促成对石墨烯上新现象的研究。