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基于钙钛矿的微型模块耦合顺序狭缝模具涂层和化学浴沉积的工业兼容制造工艺

Industrially Compatible Fabrication Process of Perovskite-Based Mini-Modules Coupling Sequential Slot-Die Coating and Chemical Bath Deposition.

作者信息

Zimmermann Iwan, Provost Marion, Mejaouri Salim, Al Atem Marc, Blaizot Alexandre, Duchatelet Aurélien, Collin Stéphane, Rousset Jean

机构信息

Institut Photovoltaïque d'Île-de-France (IPVF), 18 Boulevard Thomas Gobert, 91120 Palaiseau, France.

EDF R&D, 7 Boulevard Gaspard Monge, 91120 Palaiseau, France.

出版信息

ACS Appl Mater Interfaces. 2022 Mar 9;14(9):11636-11644. doi: 10.1021/acsami.1c24558. Epub 2022 Feb 25.

Abstract

To upscale the emerging perovskite photovoltaic technology to larger-size modules, industrially relevant deposition techniques need to be developed. In this work, the deposition of tin oxide used as an electron extraction layer is established using chemical bath deposition (CBD), a low-cost and solution-based fabrication process. Applying this simple low-temperature deposition method, highly homogeneous SnO films are obtained in a reproducible manner. Moreover, the perovskite layer is prepared by sequentially slot-die coating on top of the n-type contact. The symbiosis of these two industrially relevant deposition techniques allows for the growth of high-quality dense perovskite layers with large grains. The uniformity of the perovskite film is further confirmed by scanning electron microscopy (SEM)/scanning transmission electron microscopy (STEM) analysis coupled with energy dispersive X-ray spectroscopy (EDX) and cathodoluminescence measurements allowing us to probe the elemental composition at the nanoscale. Perovskite solar cells fabricated from CBD SnO and slot-die-coated perovskite show power conversion efficiencies up to 19.2%. Furthermore, mini-modules with an aperture area of 40 cm demonstrate efficiencies of 17% (18.1% on active area).

摘要

为了将新兴的钙钛矿光伏技术扩大到更大尺寸的组件,需要开发与工业相关的沉积技术。在这项工作中,使用化学浴沉积(CBD)建立了用作电子提取层的氧化锡沉积,这是一种低成本的基于溶液的制造工艺。应用这种简单的低温沉积方法,可以以可重复的方式获得高度均匀的SnO薄膜。此外,钙钛矿层是通过在n型接触层顶部依次进行狭缝模涂覆来制备的。这两种与工业相关的沉积技术的共生使得能够生长出具有大晶粒的高质量致密钙钛矿层。通过扫描电子显微镜(SEM)/扫描透射电子显微镜(STEM)分析以及能量色散X射线光谱(EDX)和阴极发光测量进一步证实了钙钛矿薄膜的均匀性,这些测量使我们能够在纳米尺度上探测元素组成。由CBD SnO和狭缝模涂覆的钙钛矿制成的钙钛矿太阳能电池显示出高达19.2%的功率转换效率。此外,孔径面积为40平方厘米的微型组件的效率为17%(活性面积上为18.1%)。

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