Pow(d)ering up: FAPI perovskite nanopowders for air-processed blade coated perovskite solar modules.

EES solar Pub Date : 2025-07-04 DOI:10.1039/d5el00032g
Maurizio Stefanelli, Muhammed P U Haris, Luigi Vesce, Luigi A Castriotta, Hafez Nikbakht, Fabio Matteocci, Samrana Kazim, Alessandro Triolo, Shahzada Ahmad, Aldo Di Carlo
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Abstract

Formamidinium lead iodide (FAPI) is the most prominent perovskite material utilized in the fabrication of single-junction perovskite solar cells. However, the cubic α-phase perovskite is difficult to retain in precursor solutions for extended periods due to thermodynamic instability, which promotes the formation of the yellow δ-phase. In this study, we demonstrate the fabrication of solar cells and modules from FAPI powders synthesised using a single-step method with a non-hazardous solvent and routine purity grade lead iodide. The pre-synthesised α-FAPI and CsFAPI powders demonstrated considerable potential for scalability and reproducibility. It was observed that similar efficiencies were achieved in small-area cells and mini-modules fabricated using an industrially adaptable blade coating process conducted in an open environment. The enhanced solution rheology and the meticulous control of stoichiometry result in an oriented and less strained crystal lattice, thereby demonstrating superior reproducibility and stability of the perovskite prepared from pre-synthesised powder in comparison to the one produced from high-purity precursor. The methodology developed offers a scalable and cost-effective approach to the production of high-performance and stable perovskite solar modules, with efficiencies reaching 18.5% on a 12.15 cm2 active area module and a T95 above 1200 h in shelf life stability at 30% RH in a UV-filtered environment.

功率(d)上升:空气处理叶片涂覆钙钛矿太阳能组件的FAPI钙钛矿纳米粉末。
甲脒碘化铅(FAPI)是制备单结钙钛矿太阳能电池最常用的钙钛矿材料。然而,由于热力学不稳定性,立方α相钙钛矿难以在前驱体溶液中长时间保留,从而促进了黄色δ相的形成。在这项研究中,我们展示了用无害溶剂和常规纯度级碘化铅单步合成的FAPI粉末制造太阳能电池和组件。预合成的α-FAPI和CsFAPI粉末具有相当大的可扩展性和可重复性。研究人员观察到,在开放环境中使用工业适应性叶片涂层工艺制造的小面积电池和迷你模块也实现了类似的效率。增强的溶液流变性和对化学计量学的细致控制导致了取向和较少应变的晶格,从而证明了与高纯度前驱体生产的钙钛矿相比,由预合成粉末制备的钙钛矿具有优越的再现性和稳定性。所开发的方法为生产高性能和稳定的钙钛矿太阳能组件提供了一种可扩展和经济高效的方法,在12.15 cm2的有源面积模块上效率达到18.5%,在紫外线过滤的环境中,在30% RH下,T95的保质期稳定在1200小时以上。
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