Silvestri Fabio, Marrocchi Assunta
Department of Materials Science, University of Milan-Bicocca, Italy.
Int J Mol Sci. 2010 Apr 8;11(4):1471-508. doi: 10.3390/ijms11041471.
Fossil fuel alternatives, such as solar energy, are moving to the forefront in a variety of research fields. Organic photovoltaic systems hold the promise of a lightweight, flexible, cost-effective solar energy conversion platform, which could benefit from simple solution-processing of the active layer. The discovery of semiconductive polyacetylene by Heeger et al. in the late 1970s was a milestone towards the use of organic materials in electronics; the development of efficient protocols for the palladium catalyzed alkynylation reactions and the new conception of steric and conformational advantages of acetylenes have been recently focused the attention on conjugated triple-bond containing systems as a promising class of semiconductors for OPVs applications. We review here the most important and representative (poly)arylacetylenes that have been used in the field. A general introduction to (poly)arylacetylenes, and the most common synthetic approaches directed toward making these materials will be firstly given. After a brief discussion on working principles and critical parameters of OPVs, we will focus on molecular arylacetylenes, (co)polymers containing triple bonds, and metallopolyyne polymers as p-type semiconductor materials. The last section will deal with hybrids in which oligomeric/polymeric structures incorporating acetylenic linkages such as phenylene ethynylenes have been attached onto C(60), and their use as the active materials in photovoltaic devices.
诸如太阳能等化石燃料替代品正在多个研究领域中占据前沿地位。有机光伏系统有望成为一个轻质、灵活且具有成本效益的太阳能转换平台,该平台可受益于活性层简单的溶液加工工艺。20世纪70年代末,赫格等人发现了半导体聚乙炔,这是在电子学中使用有机材料的一个里程碑;钯催化炔基化反应高效方案的开发以及乙炔空间和构象优势的新概念,最近使含共轭三键体系作为一类有前途的有机光伏应用半导体受到关注。在此,我们回顾该领域中已被使用的最重要且具有代表性的(聚)芳基乙炔。首先将对(聚)芳基乙炔以及制备这些材料最常用的合成方法进行总体介绍。在简要讨论有机光伏的工作原理和关键参数之后,我们将聚焦于分子芳基乙炔、含三键的(共)聚合物以及金属聚炔聚合物作为p型半导体材料。最后一部分将讨论其中含有炔键连接结构(如亚苯基乙炔)的低聚物/聚合物结构已连接到C(60)上的杂化物,以及它们作为光伏器件活性材料的用途。