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How to Draw Energy Level Diagrams in Excitonic Solar Cells

机译:如何在激子太阳能电池中绘制能级图

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摘要

Emerging photovoltaic devices based on molecular and nanomaterials are mostly excitonic in nature. The initial absorption of a photon in these materials creates an exciton that can subsequently dissociate in each material or at their interfaces to give charge carriers. Any attempt at mechanistic understanding of excitonic solar cells must start with drawing energy level diagrams. This seemingly elementary exercise, which is described in textbooks for inorganic solar cells, has turned out to be a difficult subject in the literature. The problem stems from conceptual confusion of single-particle energy with quasiparticle energy and the misleading practice of mixing the two on the same energy level diagram. Here, I discuss how to draw physically accurate energy diagrams in excitonic solar cells using only single-particle energies (ionization potentials and electron affinities) of both ground and optically excited states. I will briefly discuss current understanding on the electronic energy landscape responsible for efficient charge separation in excitonic solar cells.
机译:本质上,基于分子和纳米材料的新兴光伏设备大多是激子的。这些材料中光子的初始吸收会产生激子,随后该激子可以在每种材料中或在它们的界面处解离,从而提供载流子。对激子太阳能电池进行机械理解的任何尝试都必须从绘制能级图开始。在无机太阳能电池的教科书中描述了这种看似基本的练习,但事实证明这在文献中是一个困难的课题。问题源于单粒子能量与准粒子能量的概念混淆,以及在同一能级图上将两者混合的误导性做法。在这里,我将讨论如何仅使用基态和光学激发态的单粒子能量(电离能和电子亲和力)在激子太阳能电池中绘制物理上准确的能量图。我将简要讨论当前对负责激子太阳能电池中有效电荷分离的电子能量领域的理解。

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