论文标题
建模有机材料的电子结构:固态物理学家的视角
Modeling the electronic structure of organic materials: A solid-state physicist's perspective
论文作者
论文摘要
尽管在过去的三十年中取得了显着的进步,但对有机半导体的电子和光学特性进行建模仍然是一个挑战。这些系统的复杂性,包括结构(DIS)和仍在争论的兴奋剂机制,一直吸引具有不同背景的理论家。不管活跃于该领域的各个社区的共同兴趣如何,这些努力并未导致真正的跨学科研究领域。为了朝这个方向进一步发展,我们将观点呈现为固态理论家,用于研究不同物质状态下的分子材料。考虑到属于寡烯基烯和噻吩家族的典型系统,我们提供了用最先进的第一原理方法(例如密度功能理论和许多体体扰动理论)获得的电子性质和光激励的定量描述。将系统模拟为气相分子,簇和周期性晶格,我们能够识别其电子结构中的短期和长距离效应。尽管后者通常在有机晶体中占主导地位,但前者也起着重要作用,尤其是在捐助者/受体复合物的情况下。此外,我们证明了隐式方案评估嵌入在各向同性甚至各向异性环境中的分子的带隙,以与实验的定量一致。在掺杂的有机半导体的背景下,我们展示了晶体堆积如何增强这些系统对光电动应用的有利特性。借助紧密结合模型对其电子和光学特性预测的违反直觉行为进行了解密,这代表了与评估这些材料中最常见方法的连接。
Modeling the electronic and optical properties of organic semiconductors remains a challenge for theory, despite the remarkable progress achieved in the last three decades. The complexity of these systems, including structural (dis)order and the still debated doping mechanisms, has been engaging theorists with different backgrounds. Regardless of the common interest across the various communities active in this field, these efforts have not led so far to a truly interdisciplinary research area. In the attempt to move further in this direction, we present our perspective as solid-state theorists for the study of molecular materials in different states of matter. Considering exemplary systems belonging to well-known families of oligo-acenes and -thiophenes, we provide a quantitative description of electronic properties and optical excitations obtained with state-of-the-art first-principles methods such as density-functional theory and many-body perturbation theory. Simulating the systems as gas-phase molecules, clusters, and periodic lattices, we are able to identify short- and long-range effects in their electronic structure. While the latter are usually dominant in organic crystals, the former play an important role, too, especially in the case of donor/acceptor complexes. Furthermore, we demonstrate the viability of implicit schemes to evaluate band gaps of molecules embedded in isotropic and even anisotropic environments, in quantitative agreement with experiments. In the context of doped organic semiconductors, we show how the crystalline packing enhances the favorable characteristics of these systems for opto-electronic applications. The counter-intuitive behavior predicted for their electronic and optical properties is deciphered with the aid of a tight-binding model, which represents a connection to the most common approaches to evaluate transport properties in these materials.