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卤化物钙钛矿太阳能电池中的点接触:从减少界面复合到增强离子场屏蔽

Point contacts in halide perovskite solar cells: from reduced interfacial recombination to increased ionic field screening.

作者信息

He Guorui, Castro-Méndez Andrés-Felipe, Diekmann Jonas, Aalbers Guus J W, Forozi Sowmeeh Paria, Singh Arpana, Quiroz Monnens Simon V, Peña-Camargo Francisco, Stolterfoht Martin, Stannowski Bernd, Neitzert Heinz Christoph, Janssen René A J, Wolff Christian Michael, Neher Dieter, Lang Felix

机构信息

Soft Matter Physics and Optoelectronics, Institute of Physics and Astronomy, University of Potsdam Karl-Liebknecht-Str. 24-25 14476 Potsdam-Golm Germany

École Polytechnique Fédérale de Lausanne (EPFL), Institute of Electrical and Microengineering (IEM), Photovoltaics and Thin Film Electronics Laboratory (PV-Lab) Rue de la Maladière 71b 2000 Neuchâtel Switzerland.

出版信息

EES Solar. 2025 Jul 26. doi: 10.1039/d5el00110b.

Abstract

The performance of p-i-n structured perovskite solar cells (PSCs) is primarily limited by the charge recombination at the interface between the perovskite and the electron transporting layer, most commonly C. Inspired by the silicon passivated emitter rear cell design, we propose point contacts (PCs) to reduce the recombination at the perovskite/C interface. Inserting PCs between the perovskite and C layers enables an increased efficiency from 18.9% to 20.0%, which mainly originates from the reduced non-radiative recombination that leads to a higher open-circuit voltage ( ) from 1.16 to 1.21 V. Combining a lithium fluoride (LiF) layer beneath the PCs (perovskite/LiF/PCs) can further boost the to 1.26 V, reaching 90% of the detailed balance limit. However, we find that PCs exacerbate the effect of mobile ions in PSCs, accelerating the degradation under conditions. Our results reveal that mobile ions accumulate at the PCs, triggering a faster degradation of the device. These observations are further supported by one- and two-dimensional drift-diffusion simulations that confirm the accumulation of ions at the PCs. This work, therefore, highlights the importance of ion management for improved stability and points to a new degradation mechanism when a discontinuous insulating layer forms at the perovskite interfaces.

摘要

p-i-n结构的钙钛矿太阳能电池(PSCs)的性能主要受限于钙钛矿与电子传输层(最常见的是C)之间界面处的电荷复合。受硅钝化发射极背接触电池设计的启发,我们提出了点接触(PCs)来减少钙钛矿/C界面处的复合。在钙钛矿和C层之间插入PCs可使效率从18.9%提高到20.0%,这主要源于非辐射复合的减少,从而使开路电压( )从1.16 V提高到1.21 V。在PCs下方(钙钛矿/LiF/PCs)结合一层氟化锂(LiF)可进一步将 提高到1.26 V,达到详细平衡极限的90%。然而,我们发现PCs会加剧PSCs中移动离子的影响,加速在 条件下的降解。我们的结果表明,移动离子在PCs处积累,引发器件更快的降解。一维和二维漂移扩散模拟进一步支持了这些观察结果,证实了离子在PCs处的积累。因此,这项工作突出了离子管理对提高稳定性的重要性,并指出了当在钙钛矿界面形成不连续绝缘层时的一种新的降解机制。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/94a5/12319528/5c005271dd8c/d5el00110b-f1.jpg

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