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The Non-Innocent Role of Hole-Transporting Materials in Perovskite Solar Cells

机译:空穴传输材料在钙钛矿太阳能电池中的非无罪作用

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摘要

The race to the future generation of low-cost photovoltaic devices continuously takes on added momentum with the appearance of novel practical solutions for the fabrication of perovskite solar cells (PSCs), a paradigm technology for ultracheap light-to-electricity conversion. Much has been done in the past few years toward defining standard protocols for the assessment of their efficiency and stability, aiming at achieving a worldwide consensus on the issue, that will allow reliable reporting of new data. While this is undoubtedly a step ahead toward commercialization of these devices, it also often triggers researchers to test record architectures using benchmark configurations, mainly for what regards the ancillary layers that extract electrical charges from the photoexcited perovskite. In particular, the mostly used hole-transporting material (HTM) is the small-molecule spiro-OMeTAD, which is also well known to be the origin of PSC degradation after prolonged operation. Herein, it is aimed to remark the huge impact of the HTM on PSC performance, recalling major issues associated with the conventional spiro-based one and providing an overview of state-of-the-art alternatives. Finally, possible scenarios for the future development of smart HTMs are also envisioned, as charge-extracting layers, with a real active role in ensuring PSC operational stability.
机译:未来一代低成本光伏器件的竞争持续增加了新的实用解决方案,用于制造钙钛矿太阳能电池(PSC),是Ultracheap光对电力转换的范式技术。在过去的几年里,在确定标准协议的情况下,在评估其效率和稳定性的情况下,旨在在全球就该问题上实现全球达成共识,这将允许可靠地报告新数据。虽然这无疑是对这些设备的商业化的一步,但它通常还触发了使用基准配置测试记录架构的研究人员,主要用于了解从摄影普遍的佩洛夫的辅助层中提取电荷的辅助层。特别地,主要使用的空穴传输材料(HTM)是小分子螺欧比达,其众所周知是延长操作后PSC降解的起源。在此,旨在评论HTM对PSC性能的巨大影响,回顾与传统的螺旋基础相关的主要问题,并提供最先进的替代方案。最后,还设想了智能HTM的未来发展的可能场景,作为充电提取层,在确保PSC操作稳定性方面具有真正的积极作用。

著录项

  • 来源
    《Solar RRL》 |2021年第10期|2100514.1-2100514.21|共21页
  • 作者单位

    Department of Chemical Sciences University of Padova via Marzolo 1 35131 Padova Italy Interdepartmental Centre Giorgio Levi Cases for Energy Economics and Technology University of Padova via Marzolo 9 35131 Padova Italy;

    Center for Materials Research Justus Liebig University Giessen Heinrich Buff Ring 17 35392 Giessen Germany;

    Department of Materials Science and Engineering Shenzhen Key Laboratory of Full Spectral Solar Electricity Generation (FSSEG) Southern University of Science and Technology Xueyuan Rd. 1088 518055 Shenzhen China;

    Department of Materials Science and Engineering Shenzhen Key Laboratory of Full Spectral Solar Electricity Generation (FSSEG) Southern University of Science and Technology Xueyuan Rd. 1088 518055 Shenzhen China;

    Center for Materials Research Justus Liebig University Giessen Heinrich Buff Ring 17 35392 Giessen Germany;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    dopant-free hole-transporting materials; hole-transporting materials; inorganic materials; perovskite solar cells; smart materials;

    机译:无掺杂的空穴传输材料;空穴传输材料;无机材料;Perovskite太阳能电池;智能材料;

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