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Hole Transport Materials in Conventional Structural (n–i–p) Perovskite Solar Cells: From Past to the Future

机译:传统结构(n–i–p)钙钛矿太阳能电池中的空穴传输材料:从过去到未来

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摘要

With the application of organic-inorganic hybrid perovskites to liquid-type solar cells, the unprecedented development of perovskite solar cells (Per-SCs) has been boosted by the introduction of solid-state hole transport materials (HTMs). The removal of liquid electrolyte has lead to improved efficiency and stability. Supported by high-quality perovskite films, the certified efficiency of Per-SCs has reached 25.2%. For Per-SCs assembled in a conventional structure (n-i-p), the hole transport layer (HTL) plays an extra role in preventing the perovskite layer from external stimuli. In summary, the successful design and fabrication of the HTL must meet various requirements in terms of solubility, hole transport, recombination prevention, stability, and reproducibility, to name but a few. Many research strategies are focused on the development of high-performance HTMs to meet such requirements. Such strategies for the development of HTMs employed in conventional n-i-p solar cells are reviewed herein. A vision of the future HTMs is proposed in this review based on the already proposed solutions and current trends.
机译:随着有机-无机杂化钙钛矿在液体型太阳能电池中的应用,通过引入固态空穴传输材料(HTM)促进了钙钛矿太阳能电池(Per-SCs)的空前发展。液体电解质的去除导致效率和稳定性的提高。在高质量钙钛矿薄膜的支持下,Per-SC的认证效率达到了25.2%。对于以常规结构(n-i-p)组装的Per-SC,空穴传输层(HTL)在防止钙钛矿层受到外部刺激方面起着额外的作用。总而言之,HTL的成功设计和制造必须在溶解性,空穴传输,防止重组,稳定性和可再现性等方面满足各种要求。为了满足这些要求,许多研究策略都集中在高性能HTM的开发上。本文回顾了用于开发常规n-i-p太阳能电池中的HTM的此类策略。基于已提出的解决方案和当前趋势,本次审查提出了对未来HTM的愿景。

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