Calculation of the energy band structure and carrier mobilities in crystalline coronene and ovalene

H. Morris, J. Yates
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引用次数: 6

Abstract

The energy band structures of coronene and ovalene have been calculated in the tight binding approximation using Slater-type orbitals for carbon. The energy band structures of both excess electrons and holes in coronene consist of two sets of energy bands, corresponding to the two degenerate molecular energy levels of the free molecule, which exhibit a high degree of anisotropy with an average width of 0.05 eV. The energy dependence on the wave vector for k parallel to b* has several unusual features. The behaviour can, however, be understood in terms of energy band-energy band interactions. Minimum values of the mobility, calculated such that the uncertainty principle is not violated, are ca. 5 cm2/V s along the b* axis. The energy band structure of ovalene is comparatively simple, again showing a high degree of anisotropy and large bandwidths (0.1 eV). Minimum values of the mobility are of a similar order to those in coronene.
冠烯和卵二烯晶体能带结构和载流子迁移率的计算
用碳的slater型轨道在紧密结合近似下计算了冕烯和卵圆烯的能带结构。多余电子和空穴的能带结构均由两组能带组成,分别对应于自由分子的两个简并能级,具有高度的各向异性,平均宽度为0.05 eV。k平行于b*的波向量的能量依赖有几个不寻常的特征。然而,这种行为可以从能带-能带相互作用的角度来理解。在不违反测不准原理的情况下,迁移率的最小值沿b*轴约为5 cm2/V s。卵二烯的能带结构相对简单,同样表现出高度的各向异性和较大的带宽(0.1 eV)。迁移率的最小值与日冕的最小值有相似的顺序。
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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