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用于气流辅助刮刀涂布倒置钙钛矿太阳能电池及组件的纳米颗粒润湿剂

Nanoparticle Wetting Agent for Gas Stream-Assisted Blade-Coated Inverted Perovskite Solar Cells and Modules.

作者信息

Küffner Johannes, Wahl Tina, Schultes Moritz, Hanisch Jonas, Zillner Julia, Ahlswede Erik, Powalla Michael

机构信息

Center for Solar Energy and Hydrogen Research Baden-Württemberg (ZSW), Meitnerstrasse 1, Stuttgart, 70563, Germany.

出版信息

ACS Appl Mater Interfaces. 2020 Nov 25;12(47):52678-52690. doi: 10.1021/acsami.0c15428. Epub 2020 Nov 16.

Abstract

Lab-scale perovskite solar cells (PSCs) have recently reached power conversion efficiencies (PCEs) of up to 25.2%. However, a reliable transfer of solution processing from spin coating to scalable printing techniques and a homogeneous deposition on large substrate sizes is challenging also caused by dewetting of the perovskite precursor solution on highly hydrophobic subjacent materials. In this work, we report the utilization of blade-coated nonconductive silicon oxide (SiO) nanoparticles (NPs) as wetting agent for the precursor solution to enable the deposition of a homogeneous perovskite layer on the nonwetting hole transport layer (HTL). The NPs enhance the HTL surface energy, thus, wetting and homogeneous spreading of the precursor solution is strongly improved so that pinholes in the perovskite layer are avoided. In addition, we apply this concept for the first time for gas stream-assisted blade coating of PSCs and modules in the inverted (p-i-n) device architecture with poly(triaryl amine) (PTAA) as HTL on large-area substrates. To prevent void formation at the HTL interface of gas stream-assisted blade coated perovskite layers, the effect of blending small amounts of lead chloride (PbCl) in the perovskite precursor solution is investigated, which also improves reproducibility and device performance. Following these optimizations, blade coated PSCs with 0.24 cm active area achieve up to 17.9% PCE. Furthermore, to prove scalability, we show enlarged substrates of up to 9 × 9 cm and analyze the homogeneity of the perovskite layer in blade coating direction. Moreover, by implementing the blade coated NP wetting agent, we fabricate large-area modules with a maximum PCE of 9.3% on 49.60 cm aperture area. This represents a further important step bringing solution-processed inverted PSCs closer to application.

摘要

实验室规模的钙钛矿太阳能电池(PSC)最近已达到高达25.2%的功率转换效率(PCE)。然而,将溶液处理从旋涂可靠地转移到可扩展的印刷技术,并在大尺寸基板上均匀沉积具有挑战性,这也是由钙钛矿前驱体溶液在高度疏水的下层材料上的去湿引起的。在这项工作中,我们报告了使用刮刀涂布的非导电氧化硅(SiO)纳米颗粒(NP)作为前驱体溶液的湿润剂,以在不湿润的空穴传输层(HTL)上沉积均匀的钙钛矿层。这些纳米颗粒提高了HTL的表面能,因此,前驱体溶液的湿润和均匀铺展得到了显著改善,从而避免了钙钛矿层中的针孔。此外,我们首次将这一概念应用于以聚(三芳基胺)(PTAA)作为HTL的倒置(p-i-n)器件结构的PSC和模块的气流辅助刮刀涂布,用于大面积基板。为了防止气流辅助刮刀涂布的钙钛矿层在HTL界面处形成空隙,研究了在钙钛矿前驱体溶液中混合少量氯化铅(PbCl)的效果,这也提高了再现性和器件性能。经过这些优化,有效面积为0.24平方厘米的刮刀涂布PSC实现了高达17.9%的PCE。此外,为了证明可扩展性,我们展示了面积扩大至9×9厘米的基板,并分析了刮刀涂布方向上钙钛矿层的均匀性。此外,通过采用刮刀涂布的NP湿润剂,我们制造了孔径面积为49.60平方厘米且最大PCE为9.3%的大面积模块。这代表了使溶液处理的倒置PSC更接近应用的又一重要步骤。

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