Nanoscopic Parylene Layer: Enhancing Perovskite Solar Cells Through Parylene-D Passivation.

IF 10.7 2区 材料科学 Q1 CHEMISTRY, PHYSICAL
Heesu Kim, Byeongil Noh, Cheong Beom Lee, Eun Young Park, Gunoh Lee, Hyuntae Choi, Yeji Kim, Kyeounghak Kim, Nam Joong Jeon, Kyung Jin Lee, Seulki Song
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Abstract

The development of eco-friendly energy sources has advanced photovoltaic technologies, with perovskite solar cells (PSCs) emerging as promising alternatives owing to their high efficiency, low fabrication costs, and excellent optical and electronic properties. However, their commercialization is hindered by stability issues, such as ion migration, defect-induced degradation, and nonuniformity of the solution process over large areas, particularly at the perovskite/hole-transporting layer (HTL) interface. To address these challenges, chemical vapor deposition (CVD) is employed to introduce an ultrathin, uniform parylene-D layer at the perovskite/HTL interface. Parylene-D, containing additional chlorine functional groups compared to parylene-C, supports bidentate chelation, enabling effective interaction with uncoordinated Pb2⁺ and perovskite surface defects. This passivation layer significantly reduces nonradiative recombination and suppresses ion migration without affecting the morphology or electrical properties of large-area perovskites. The optimized parylene-D treatment yields PSCs with 23.75% efficiency and enhanced open-circuit voltage and fill factor. Stability tests demonstrate that the parylene-D-treated devices retain their initial efficiency after 1500 h under 10% relative humidity at room temperature and maintain 80% efficiency after 1200 h at 65 °C in a nitrogen environment. Furthermore, the scalability of this approach is validated by fabricating a large-area module (25 cm2 aperture area), achieving module and active area efficiencies of 19.44% and 20.59%, respectively. These results highlight the potential of parylene-D passivation via CVD as a practical and scalable strategy to enhance PSC performance and stability.

纳米聚苯二烯层:通过聚苯二烯- d钝化增强钙钛矿太阳能电池。
环保能源的发展推动了光伏技术的发展,钙钛矿太阳能电池(PSCs)因其高效率、低制造成本和优异的光学和电子性能而成为有前途的替代品。然而,它们的商业化受到稳定性问题的阻碍,例如离子迁移、缺陷引起的降解和大面积溶液过程的不均匀性,特别是在钙钛矿/空穴传输层(html)界面。为了解决这些挑战,采用化学气相沉积(CVD)技术在钙钛矿/ html界面处引入超薄、均匀的聚苯乙烯- d层。与二甲苯- c相比,二甲苯- d含有额外的氯官能团,支持双齿螯合,能够与不配位的Pb2 +和钙钛矿表面缺陷有效相互作用。该钝化层显著减少了非辐射复合和抑制离子迁移,而不影响大面积钙钛矿的形貌或电学性质。优化后的PSCs效率为23.75%,开路电压和填充系数均有所提高。稳定性测试表明,在10%相对湿度的室温条件下,经过二甲苯处理的器件在1500 h后仍能保持初始效率,在65℃氮气环境下,在1200 h后仍能保持80%的效率。此外,通过制造大面积模块(25 cm2孔径面积)验证了该方法的可扩展性,模块和有效面积效率分别达到19.44%和20.59%。这些结果突出了通过CVD进行聚苯乙烯- d钝化的潜力,作为一种实用且可扩展的策略来提高PSC的性能和稳定性。
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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来源期刊
Small Methods
Small Methods Materials Science-General Materials Science
CiteScore
17.40
自引率
1.60%
发文量
347
期刊介绍: Small Methods is a multidisciplinary journal that publishes groundbreaking research on methods relevant to nano- and microscale research. It welcomes contributions from the fields of materials science, biomedical science, chemistry, and physics, showcasing the latest advancements in experimental techniques. With a notable 2022 Impact Factor of 12.4 (Journal Citation Reports, Clarivate Analytics, 2023), Small Methods is recognized for its significant impact on the scientific community. The online ISSN for Small Methods is 2366-9608.
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