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通过过饱和度调节抑制界面成核竞争以提高钙钛矿薄膜质量和可扩展性。

Suppressing interfacial nucleation competition through supersaturation regulation for enhanced perovskite film quality and scalability.

作者信息

Zhang Gao, Ding Bin, Ding Yong, Liu Yan, Yu Changze, Zeng Lirong, Wang Yao, Zhang Xin, Liu Meijun, Tian Qingyong, Fan Bin, Liu Qiuju, Yang Guanjun, Nazeeruddin Mohammad Khaja, Chen Bo

机构信息

State Key Laboratory for Mechanical Behavior of Materials, Xi'an Jiaotong University, Xi'an, Shaanxi 710049, P.R. China.

Group for Molecular Engineering of Functional Materials, Institute of Chemical Sciences and Engineering, EPFL VALAIS, Sion 1950, Switzerland.

出版信息

Sci Adv. 2024 Aug 9;10(32):eadl6398. doi: 10.1126/sciadv.adl6398. Epub 2024 Aug 7.

Abstract

The growing interest in cost-effective and high-performing perovskite solar cells (PSCs) has driven extensive research. However, the challenge lies in upscaling PSCs while maintaining high performance. This study focuses on achieving uniform and compact perovskite films without pinholes and interfacial voids during upscaling from small PSCs to large-area modules. Competition in nucleation at concavities with various angles on rough-textured substrates during the gas-pumping drying process, coupled with different drying rates across the expansive film, aggravates these issues. Consequently, substrate roughness notably influences the deposition window of compact large-area perovskite films. We propose a supersaturation regulation approach aimed at achieving compact deposition of high-quality perovskite films over large areas. This involves introducing a rapid drying strategy to induce a high-supersaturation state, thereby equalizing nucleation across diverse concavities. This breakthrough enables the production of perovskite photovoltaics with high efficiencies of 25.58, 21.86, and 20.62% with aperture areas of 0.06, 29, and 1160 square centimeters, respectively.

摘要

对具有成本效益且高性能的钙钛矿太阳能电池(PSC)日益增长的兴趣推动了广泛的研究。然而,挑战在于在扩大PSC规模的同时保持高性能。本研究的重点是在从小尺寸PSC扩大到大面积模块的过程中,制备出无针孔和界面空隙的均匀致密钙钛矿薄膜。在气体抽运干燥过程中,粗糙纹理基板上不同角度凹处的成核竞争,以及整个大面积薄膜不同的干燥速率,加剧了这些问题。因此,基板粗糙度显著影响致密大面积钙钛矿薄膜的沉积窗口。我们提出了一种过饱和度调节方法,旨在实现高质量钙钛矿薄膜在大面积上的致密沉积。这包括引入快速干燥策略以诱导高过饱和状态,从而使不同凹处的成核均匀化。这一突破使得能够分别制备出孔径面积为0.06、29和1160平方厘米,效率分别为25.58%、21.86%和20.62%的高效钙钛矿光伏器件。

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