A green solvent enables precursor phase engineering of stable formamidinium lead triiodide perovskite solar cells.

Gallant, Benjamin M; Holzhey, Philippe; Smith, Joel A; Choudhary, Saqlain; Elmestekawy, Karim A; Caprioglio, Pietro; Levine, Igal; Sheader, Alexandra A et al. · Nat Commun · 2024

basic_science · Level V

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Abstract

Perovskite solar cells (PSCs) offer an efficient, inexpensive alternative to current photovoltaic technologies, with the potential for manufacture via high-throughput coating methods. However, challenges for commercial-scale solution-processing of metal-halide perovskites include the use of harmful solvents, the expense of maintaining controlled atmospheric conditions, and the inherent instabilities of PSCs under operation. Here, we address these challenges by introducing a high volatility, low toxicity, biorenewable solvent system to fabricate a range of 2D perovskites, which we use as highly effective precursor phases for subsequent transformation to α-formamidinium lead triiodide (α-FAPbI<sub>3</sub>), fully processed under ambient conditions. PSCs utilising our α-FAPbI<sub>3</sub> reproducibly show remarkable stability under illumination and elevated temperature (ISOS-L-2) and "damp heat" (ISOS-D-3) stressing, surpassing other state-of-the-art perovskite compositions. We determine that this enhancement is a consequence of the 2D precursor phase crystallisation route, which simultaneously avoids retention of residual low-volatility solvents (such as DMF and DMSO) and reduces the rate of degradation of FA<sup>+</sup> in the material. Our findings highlight both the critical role of the initial crystallisation process in determining the operational stability of perovskite materials, and that neat FA<sup>+</sup>-based perovskites can be competitively stable despite the inherent metastability of the α-phase.