Ren Shiwei, Yassar Abderrahim
Zhuhai Fudan Innovation Institution, Guangdong-Macao In-Depth Cooperation Zone in Hengqin, Guangdong 519000, China.
LPICM, Ecole Polytechnique, CNRS, Institut Polytechnique de Paris, 91128 Palaiseau, France.
Materials (Basel). 2023 Mar 20;16(6):2474. doi: 10.3390/ma16062474.
This review highlights selected examples, published in the last three to four years, of recent advance in the design, synthesis, properties, and device performance of quinoidal π-conjugated materials. A particular emphasis is placed on emerging materials, such as indophenine dyes that have the potential to enable high-performance devices. We specifically discuss the recent advances and design guidelines of π-conjugated quinoidal molecules from a chemical standpoint. To the best of the authors' knowledge, this review is the first compilation of literature on indophenine-based semiconducting materials covering their scope, limitations, and applications. In the first section, we briefly introduce some of the organic electronic devices that are the basic building blocks for certain applications involving organic semiconductors (OSCs). We introduce the definition of key performance parameters of three organic devices: organic field effect transistors (OFET), organic photovoltaics (OPV), and organic thermoelectric generators (TE). In section two, we review recent progress towards the synthesis of quinoidal semiconducting materials. Our focus will be on indophenine family that has never been reviewed. We discuss the relationship between structural properties and energy levels in this family of molecules. The last section reports the effect of structural modifications on the performance of devices: OFET, OPV and TE. In this review, we provide a general insight into the association between the molecular structure and electronic properties in quinoidal materials, encompassing both small molecules and polymers. We also believe that this review offers benefits to the organic electronics and photovoltaic communities, by shedding light on current trends in the synthesis and progression of promising novel building blocks. This can provide guidance for synthesizing new generations of quinoidal or diradical materials with tunable optoelectronic properties and more outstanding charge carrier mobility.
本综述重点介绍了近三到四年发表的有关醌型π共轭材料设计、合成、性质及器件性能方面的最新进展。特别强调了新兴材料,如具有实现高性能器件潜力的靛酚染料。我们从化学角度具体讨论了π共轭醌型分子的最新进展和设计指南。据作者所知,本综述是关于基于靛酚的半导体材料的文献首次汇编,涵盖了它们的范围、局限性及应用。在第一部分,我们简要介绍了一些有机电子器件,这些器件是涉及有机半导体(OSC)的某些应用的基本构建模块。我们介绍了三种有机器件关键性能参数的定义:有机场效应晶体管(OFET)、有机光伏电池(OPV)和有机热电发电机(TE)。在第二部分,我们综述了醌型半导体材料合成方面的最新进展。我们将重点关注从未被综述过的靛酚家族。我们讨论了该分子家族的结构性质与能级之间的关系。最后一部分报告了结构修饰对器件(OFET、OPV和TE)性能的影响。在本综述中,我们对醌型材料(包括小分子和聚合物)的分子结构与电子性质之间的关联提供了总体见解。我们还认为,本综述通过揭示有前景的新型构建模块的合成和发展的当前趋势,为有机电子学和光伏领域带来了益处。这可为合成具有可调谐光电性质和更优异电荷载流子迁移率的新一代醌型或双自由基材料提供指导。