Farokhi Afsaneh, Shahroosvand Hashem, Monache Gabriele Delle, Pilkington Melanie, Nazeeruddin Mohammad Khaja
Group for Molecular Engineering of Advanced Functional Materials (GMA), Chemistry Department, University of Zanjan, Zanjan, Iran.
Department of Chemistry, Brock University, 1812 Sir Isaac Brock Way, St Catharines, Ontario, L2S3A1, Canada.
Chem Soc Rev. 2022 Jul 18;51(14):5974-6064. doi: 10.1039/d1cs01157j.
In recent years, the dramatic increase in power conversion efficiency (PCE) coupled with a decrease in the total cost of third-generation solar cells has led to a significant increase in the collaborative research efforts of academic and industrial researchers. Such interdisciplinary studies have afforded novel materials, which in many cases are now ready to be brought to the marketplace. Within this framework, the field of perovskite solar cells (PSCs) is currently an important area of research due to their extraordinary light-harvesting properties. In particular, PSCs prepared facile synthetic procedures, containing hole transport materials (HTMs) with versatile triphenylamine (TPA) structural cores, amenable to functionalization, have become a focus of intense global research activity. To optimize the efficiency of the solar cells to achieve efficiencies closer to rival silicon-based technology, TPA building blocks must exhibit favourable electrochemical, photophysical, and photochemical properties that can be chemically tuned in a rational manner. Although PSCs based on TPA building blocks exhibit attractive properties such as high-power efficiencies, a reduction in their synthetic costs coupled with higher stabilities and environmental considerations still need to be addressed. Considering the above, a detailed summary of the most promising compounds and current methodologies employed to overcome the remaining challenges in this field is provided. The objective of this review is to provide guidance to readers on exploring new avenues for the discovery of efficient TPA derivatives, to aid in the future development and advancement of TPA-based PSCs for commercial applications.
近年来,第三代太阳能电池的功率转换效率(PCE)急剧提高,同时总成本下降,这使得学术和工业研究人员的合作研究力度显著加大。这类跨学科研究带来了新型材料,在许多情况下,这些材料现已准备好推向市场。在此框架内,钙钛矿太阳能电池(PSC)领域因其卓越的光捕获特性,目前是一个重要的研究领域。特别是,通过简便合成方法制备的PSC,含有具有通用三苯胺(TPA)结构核心且易于功能化的空穴传输材料(HTM),已成为全球密集研究活动的焦点。为了优化太阳能电池的效率,使其更接近与硅基技术竞争的水平,TPA结构单元必须展现出可通过合理方式进行化学调控的良好电化学、光物理和光化学性质。尽管基于TPA结构单元的PSC具有诸如高功率效率等吸引人的特性,但仍需解决降低其合成成本、提高稳定性以及考虑环境因素等问题。考虑到上述情况,本文提供了最有前景的化合物以及用于克服该领域剩余挑战的当前方法的详细总结。本综述的目的是为读者探索发现高效TPA衍生物的新途径提供指导,以助力基于TPA的PSC在商业应用中的未来发展与进步。