Thermodynamic Stability and Electronic Properties of Graphene Nanoflakes

C Pub Date : 2024-01-03 DOI:10.3390/c10010005
R. Soave, F. Cargnoni, M. I. Trioni
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Abstract

We conducted a large set of ab initio density functional theory computations to model a variety of hammer-terminated graphene nanoflakes—finite counterparts of armchair graphene nanoribbons. We focused on the relationships among the length and width of the nanoflakes, the stoichiometry and the conformation of the hydrogen saturation of the caps, and the resulting electronic structure. The energetics and the thermodynamic stability of the nanoflakes were investigated as well. Based on this study, we provide a recipe for determining the most stable saturation of the dangling bonds at the caps, which is generally disregarded in theoretical studies, and we prove that this step is crucial for a reliable description of the electronic structure of these systems. Data analysis proved that flakes far from the most stable C–H pattern exhibited electronic properties that were typical of an unsaturated bonding structure. Based on thermodynamics, we also proved that, for any given flake, there was a well-defined hydrogen content and a conformation of H atoms at the caps, which were favored across a wide range of environmental conditions.
石墨烯纳米片的热力学稳定性和电子特性
我们进行了大量的ab initio密度泛函理论计算,以模拟各种锤端石墨烯纳米片--扶手石墨烯纳米带的无限对应物。我们重点研究了纳米片的长度和宽度、化学计量和帽盖氢饱和构象以及由此产生的电子结构之间的关系。我们还研究了纳米片的能量和热力学稳定性。在这项研究的基础上,我们提供了一个确定瓶盖悬键最稳定饱和度的方法,而理论研究中通常忽略了这一点,我们证明了这一步对于可靠描述这些系统的电子结构至关重要。数据分析证明,远离最稳定 C-H 模式的薄片表现出典型的不饱和键结构的电子特性。基于热力学,我们还证明,对于任何给定的薄片,都有明确的氢含量和氢原子在瓶盖处的构象,这在各种环境条件下都是有利的。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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