access icon free From spin coating to roll-to-roll: investigating the challenge of upscaling lead halide perovskite solar cells

Spin coating, typically used to achieve nanometre thick films, is the established method for depositing perovskite precursors at lab scale for use in solar cells. This study investigates the dynamics of spin coating perovskite. By combining experimental measurement with a semi-empirical model the evaporation rate of the dimethylformamide solvent during the spin coating of a mixed lead halide precursor is determined to be 1.2 × 10–8 m/s. When K-bar coating the same precursor the solvent does not significantly evaporate during the deposition process and when this film is crystallised on a hot plate a rough film results which gives a power conversion efficiency (PCE) of less than 2%. By increasing the airflow of the K-bar coated perovskite film during crystallisation to 2.7 × 10–4 m/s the PCE increases significantly to 8.5% through an improvement in short-circuit current and fill factor.

Inspec keywords: lead compounds; crystallisation; thick film devices; short-circuit currents; evaporation; solar cells; spin coating

Other keywords: K-bar coating; perovskite precursor deposition; spin coating perovskite dynamics; fill factor improvement; hot plate; power conversion efficiency; evaporation rate; lead halide perovskite solar cell upscaling; PCE; short-circuit current improvement; semiempirical model; nanometre thick film; dimethylformamide solvent; PbCl2; film crystallisation; K-bar coated perovskite film airflow; rough film; mixed lead halide precursor

Subjects: Solar cells and arrays; Photoelectric conversion; solar cells and arrays

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