Biskup Till
Institute of Physical Chemistry, University of Freiburg, Freiburg, Germany.
Front Chem. 2019 Feb 1;7:10. doi: 10.3389/fchem.2019.00010. eCollection 2019.
Organic photovoltaics (OPV) is a promising technology to account for the increasing demand for energy in form of electricity. Whereas the last decades have seen tremendous progress in the field witnessed by the steady increase in efficiency of OPV devices, we still lack proper understanding of fundamental aspects of light-energy conversion, demanding for systematic investigation on a fundamental level. A detailed understanding of the electronic structure of semiconducting polymers and their building blocks is essential to develop efficient materials for organic electronics. Illuminating conjugated polymers not only leads to excited states, but sheds light on some of the most important aspects of device efficiency in organic electronics as well. The interplay between electronic structure, morphology, flexibility, and local ordering, while at the heart of structure-function relationship of organic electronic materials, is still barely understood. (Time-resolved) electron paramagnetic resonance (EPR) spectroscopy is particularly suited to address these questions, allowing one to directly detect paramagnetic states and to reveal their spin-multiplicity, besides its clearly superior spectral resolution compared to optical methods. This article aims at giving a non-specialist audience an overview of what EPR spectroscopy and particularly its time-resolved variant (TREPR) can contribute to unraveling aspects of structure-function relationship in organic semiconductors.
有机光伏(OPV)是一项很有前景的技术,可满足对电能形式不断增长的能源需求。尽管在过去几十年里,OPV器件的效率稳步提高,该领域取得了巨大进展,但我们仍缺乏对光能转换基本方面的恰当理解,这需要在基础层面进行系统研究。深入了解半导体聚合物及其结构单元的电子结构对于开发高效有机电子材料至关重要。照射共轭聚合物不仅会产生激发态,还能揭示有机电子学中器件效率的一些最重要方面。电子结构、形态、柔韧性和局部有序性之间的相互作用,虽然是有机电子材料结构 - 功能关系的核心,但仍几乎不为人所理解。(时间分辨)电子顺磁共振(EPR)光谱特别适合解决这些问题,除了其与光学方法相比具有明显优越的光谱分辨率外,还能让人直接检测顺磁态并揭示其自旋多重性。本文旨在向非专业读者概述EPR光谱,特别是其时间分辨变体(TREPR)在揭示有机半导体结构 - 功能关系方面可以做出的贡献。