基于热蒸发的钙钛矿基串联太阳能电池电子传输双层设计

IF 3.6 Q1 CHEMISTRY, MULTIDISCIPLINARY
Siwon Yun, Hyeji Han, Muhammad Adnan, Wonjong Lee, Min Kim, Jongchul Lim, Jinseck Kim
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引用次数: 0

摘要

高性能钙钛矿太阳能电池(PSCs)和钙钛矿基串联太阳能电池(PTSCs)由于其简单和经济的制造工艺而受到了研究人员的广泛关注。然而,需要仔细考虑电荷传输层的选择,这对提高器件的效率和稳定性起着关键作用。在p-i-n(倒置)PSCs中,富勒烯及其衍生物被广泛用作电子传输层(etl)。其中,富勒烯与低温和真空太阳能电池制造工艺兼容。然而,单层富勒烯由于其聚集倾向,容易形成不均匀的层。此外,它难以承受在串联结构中形成透明导电层时发生的损坏。为了克服富勒烯的局限性,采用双层ETL已成为一种很有前途的策略。因此,本研究重点研究了ETL在倒置PSCs中的蒸发过程,强调了双层ETL结构在提高PTSCs效率和耐用性方面的重要性。讨论强调了双层etl的材料选择,并检查了最佳厚度参数,以实现卓越的效率。通过对双层etl的全面了解,本文旨在指导PSCs和PTSCs技术的未来发展。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Electron Transport Bilayer Design for Perovskite-Based Tandem Solar Cells Using Thermal Evaporation

Electron Transport Bilayer Design for Perovskite-Based Tandem Solar Cells Using Thermal Evaporation

The development of high-performance perovskite solar cells (PSCs) and perovskite-based tandem solar cells (PTSCs) has attracted significant attention from researchers owing to their simple and cost-effective fabrication process. However, careful consideration is required regarding the selection of charge-transport layers, which play a key role in improving the efficiency and stability of devices. In p–i–n (inverted) PSCs, fullerene and its derivatives are widely employed as electron-transport layers (ETLs). Among them, fullerene is compatible with low-temperature and vacuum-based solar cell fabrication processes. However, the single layer of fullerene tends to form nonuniform layers due to its aggregation propensity. Furthermore, it struggles to withstand the damage that occurs during the formation of transparent conductive layers in tandem configurations. To overcome the limitation of fullerene, employing bilayer ETL has emerged as a promising strategy. Therefore, in this study, the evaporation processes for ETLs in inverted PSCs are focused on, emphasizing the importance of bilayer ETL architectures in enhancing the efficiency and durability of PTSCs. The discussion highlights material options for bilayer ETLs and examines optimal thickness parameters to achieve superior efficiency. By providing a comprehensive understanding of bilayer ETLs, this review aims to guide future advancements in the PSCs and PTSCs technologies.

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