Department of Materials, University of Oxford, Parks Road, Oxford OX1 3PH, United Kingdom.
Phys Rev Lett. 2012 Sep 14;109(11):116801. doi: 10.1103/PhysRevLett.109.116801. Epub 2012 Sep 10.
Investigating quasiparticle excitations of molecules on surfaces through photoemission spectroscopy forms a major part of nanotechnology research. Resolving spectral features at these interfaces requires a comprehensive theory of electron removal and addition processes in molecules and solids which captures the complex interplay of image charges, thermal effects, and configurational disorder. Here, we develop such a theory and calculate the quasiparticle energy-level alignment and the valence photoemission spectrum for the prototype biomimetic solar cell interface between anatase TiO(2) and the N3 chromophore. By directly matching our calculated photoemission spectrum to experimental data, we clarify the atomistic origin of the chromophore peak at low binding energy. This case study sets a new standard in the interpretation of photoemission spectroscopy at complex chromophore-semiconductor interfaces.
通过光电子能谱研究表面上分子的准粒子激发是纳米技术研究的主要内容。要解析这些界面处的光谱特征,就需要有一种综合的理论来描述分子和固体中电子的去除和添加过程,该理论需要捕捉到像电荷、热效应和构型无序之间的复杂相互作用。在这里,我们发展了这样一种理论,并计算了锐钛矿 TiO(2)和 N3 生色团之间的原型仿生太阳能电池界面的准粒子能级排列和价带光电子能谱。通过将我们计算的光电子能谱与实验数据直接匹配,我们阐明了低结合能处生色团峰的原子起源。这个案例研究为复杂生色团-半导体界面的光电子能谱解释设定了一个新的标准。