Carbon-based perovskite solar cells with electron and hole-transporting/-blocking layers

Wenjin Yu, Yu Zou, Shining Zhang, Zishi Liu, Cuncun Wu, Bo Qu, Zhijian Chen, Lixin Xiao
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引用次数: 5

Abstract

Towards commercialization of perovskite solar cells (PSCs), further reducing the cost and increasing the stability of PSCs have been the most important tasks of researchers, as the efficiency of single-junction PSCs has reached a competitive level among all kinds of single-junction solar cells. Carbon-electrode-based PSCs (CPSCs), as one of the most promising constructions for achieving stable economical PSCs, now attract enormous attention for their cost-effectiveness and stability. Here, we briefly review the development of CPSCs and reveal the importance of n-i-p architecture for state-of-the-art CPSCs. However, despite their promising potential, challenges still exist in CPSCs in the n-i-p architecture, which mainly stem from the incompact contact of the hole-transporting layer (HTL)/carbon electrode. Thus, new carbon materials and/or novel manufacturing methods should be proposed. In addition, HTL is yet to be appropriate for state-of-the-art CPSCs because the fabrication of carbon electrode could result in the destruction of the underlayer. To further enhance the performance of CPSCs, both the HTL and electron transport layer as well as their interfaces with perovskite active layer need to be improved. We recommend that the perovskite active layer, with its long carrier lifetime, strong carrier transport capability, and long-term stability, is necessary as well for improved performance of CPSCs. We also highlight current researches on CPSCs and provide a systematic review of various types of regulation tools.
具有电子和空穴传输/阻挡层的碳基钙钛矿太阳能电池
随着钙钛矿太阳能电池(PSCs)的效率在各类单结太阳能电池中已达到具有竞争力的水平,进一步降低其成本和提高其稳定性已成为研究人员面临的最重要的任务。碳电极基PSCs (CPSCs)由于其成本效益和稳定性受到广泛关注,是实现稳定经济的PSCs最有前途的结构之一。在这里,我们简要回顾了CPSCs的发展,并揭示了n-i-p架构对最先进的CPSCs的重要性。然而,尽管它们具有很大的潜力,但在n-i-p结构的CPSCs中仍然存在挑战,这主要源于空穴传输层(HTL)/碳电极的不紧密接触。因此,应该提出新的碳材料和/或新的制造方法。此外,HTL还不适合最先进的cpsc,因为碳电极的制造可能导致底层的破坏。为了进一步提高CPSCs的性能,HTL和电子传递层以及它们与钙钛矿活性层的界面都需要改进。我们认为钙钛矿活性层具有较长的载流子寿命、较强的载流子输运能力和长期稳定性,是提高cpsc性能所必需的。我们还重点介绍了目前对CPSCs的研究,并对各种类型的调控工具进行了系统综述。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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CiteScore
7.40
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