Scalable Fabrication of High-Performance Perovskite Solar Cell Modules by Mediated Vapor Deposition.

Wang, Yulong; Chen, Jiahui; Zhang, Yuxi; Lv, Pin; Pan, Junye; Hu, Min; Tan, Wen Liang; Ku, Zhiliang et al. · Adv Mater · 2024

basic_science · Level V

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Abstract

Perovskite solar cells (PSCs) can enable renewable electricity generation at low levelized costs, subject to the invention of an economically feasible technology for their large-scale fabrication, like vapor deposition. This approach is effective for the fabrication of small area (<1 cm<sup>2</sup>) PSCs, but its scale-up to produce high-efficiency larger area modules has been limited by a severe imbalance between the vapor-solid reaction kinetics and the mass-transport of the volatile ammonium salt precursor. In this study, an amidine-based low-dimensional perovskite is introduced as an intermediate of the solid-vapor reaction to help resolve this limitation. This improves reaction pathway produces unique vertically monolithic grains with no detectable horizontal boundaries, which is used to produce 1.0 cm<sup>2</sup> PSCs with an efficiency of 22.1%, as well as 12.5 and 48 cm<sup>2</sup> modules delivering 21.1% and 20.1% efficiency, respectively. The modules retain ≈85% of their initial performance after 900 h of continuous operation (ISOS-L-1 protocol) and ≈100% after 2800 h of storage in an ambient environment (ISOS-D-1 protocol).