A Bifunctional Carbazide Additive For Durable CsSnI<sub>3</sub> Perovskite Solar Cells.
basic_science · Level V
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- Record sourced from PubMed, PMID 36995983.
- Also identified by DOI 10.1002/adma.202300503.
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Abstract
Inorganic CsSnI<sub>3</sub> with low toxicity and a narrow bandgap is a promising photovoltaic material. However, the performance of CsSnI<sub>3</sub> perovskite solar cells (PSCs) is much lower than that of Pb-based and hybrid Sn-based (e.g., CsPbX<sub>3</sub> and CH(NH<sub>2</sub> )<sub>2</sub> SnX<sub>3</sub> ) PSCs, which may be attributed to its poor film-forming property and the deep traps induced by Sn<sup>4+</sup> . Here, a bifunctional additive carbazide (CBZ) is adapted to deposit a pinhole-free film and remove the deep traps via two-step annealing. The lone electrons of the NH<sub>2</sub> and CO units in CBZ can coordinate with Sn<sup>2+</sup> to form a dense film with large grains during the phase transition at 80 °C. The decomposition of CBZ can reduce Sn<sup>4+</sup> to Sn<sup>2+</sup> during annealing at 150 °C to remove the deep traps. Compared with the control device (4.12%), the maximum efficiency of the CsSnI<sub>3</sub> :CBZ PSC reaches 11.21%, which is the highest efficiency of CsSnI<sub>3</sub> PSC reported to date. A certified efficiency of 10.90% is obtained by an independent photovoltaic testing laboratory. In addition, the unsealed CsSnI<sub>3</sub> :CBZ devices maintain initial efficiencies of ≈100%, 90%, and 80% under an inert atmosphere (60 days), standard maximum power point tracking (650 h at 65 °C), and ambient air (100 h), respectively.