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设计钙钛矿太阳能电池空穴传输材料时应考虑哪些因素?特别关注噻吩类空穴传输材料。

What Should be Considered While Designing Hole-Transporting Material for Perovskite Solar Cells? A Special Attention to Thiophene-Based Hole-Transporting Materials.

机构信息

Department of Chemistry, School of Advanced Sciences, Vellore Institute of Technology, Vellore, 632014, Tamil Nadu, India.

出版信息

Top Curr Chem (Cham). 2024 Jun 3;382(2):21. doi: 10.1007/s41061-024-00464-x.

Abstract

The molecular design and conformations of hole-transporting materials (HTM) have unravelled a strategy to enhance the performance of environmentally sustainable perovskite solar cells (PSC). Several attempts have been made and several are underway for improving the efficiency of PSCs by designing an efficient HTM, which is crucial to preventing corrosion, facilitating effective hole transportation, and preventing charge recombination. There is a need for a potential alternative to the current market-dominating HTM due to its high cost of production, dopant requirements, moisture sensitivity, and low stability. Among several proposed HTMs, molecules derived from thiophene exhibit unique behaviour, such as the interaction with under-coordinated Pb, thereby facilitating the passivation of surface defects in the perovskite layer. In addition, coupling a suitable side chain imparts a hydrophobic character, eventually leading to the development of a moisture-sensitive and highly stable PSC. Furthermore, thiophene-backboned polymers with ionic pendants have been employed as an interfacial layer between PSC layers, with the backbone facilitating efficient charge transfer. This perspective article comprehensively presents the design strategy, characterization, and function of HTMs associated with thiophene-derived molecules. Hence, it is observed that thiophene-formulated HTMs have an enhanced passivation effect, good performance in an open-circuit environment, longevity, humidity resistance, thermostability, good hole extraction, and mobility in a dopant-free condition. For a better understanding, the article provides a comparative description of the activity and function of thiophene-based small molecules and polymers and their effect on device performance.

摘要

空穴传输材料(HTM)的分子设计和构象为提高环境可持续性钙钛矿太阳能电池(PSC)的性能提供了一种策略。已经进行了多次尝试,并正在进行多项尝试,通过设计高效的 HTM 来提高 PSC 的效率,这对于防止腐蚀、促进有效的空穴传输和防止电荷复合至关重要。由于其生产成本高、掺杂剂要求高、对湿度敏感以及稳定性低,需要一种潜在的替代当前市场主导的 HTM。在几种提出的 HTM 中,源自噻吩的分子表现出独特的行为,例如与欠配位的 Pb 相互作用,从而促进钙钛矿层表面缺陷的钝化。此外,耦合合适的侧链赋予疏水性,最终导致开发出对湿度敏感且高度稳定的 PSC。此外,具有离子侧链的噻吩主链聚合物已被用作 PSC 层之间的界面层,主链有利于有效的电荷转移。本文全面介绍了与噻吩衍生分子相关的 HTM 的设计策略、表征和功能。因此,噻吩配方 HTM 具有增强的钝化效果、在开路环境中的良好性能、长寿命、耐湿性、热稳定性、在无掺杂剂条件下良好的空穴提取和迁移率。为了更好地理解,本文提供了噻吩基小分子和聚合物的活性和功能及其对器件性能影响的比较描述。

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