Solvent engineering for two-dimensional perovskite of guanidium lead iodideopen access
- Authors
- Nath, Narayan Chandra Deb; Kang, Hyeong Cheol; Lee, Jae-Joon
- Issue Date
- Dec-2022
- Publisher
- Elsevier BV
- Keywords
- Perovskite solar cell; Guanidium Lead Triiodide Diguanidinium lead tetra-iodide; Two-dimensional; Lewis acid-base adduct
- Citation
- Synthetic Metals, v.291, pp 1 - 7
- Pages
- 7
- Indexed
- SCIE
SCOPUS
- Journal Title
- Synthetic Metals
- Volume
- 291
- Start Page
- 1
- End Page
- 7
- URI
- https://scholarworks.dongguk.edu/handle/sw.dongguk/2189
- DOI
- 10.1016/j.synthmet.2022.117175
- ISSN
- 0379-6779
1879-3290
- Abstract
- Guanidinium lead tri-iodide-based perovskite (GAPbI(3)) is considered a potential candidate for stable structural template of future perovskite solar cells (PSCs) due to the high molecular symmetry of the GA cation, leading to a near-zero dipole moment, along with a high thermodynamic stability. However, a very low power conversion efficiency (PCE) has been reported for GAPbI(3) PSC due to its low-dimensionality, comparatively large band gap, and significant trap states due to large grain boundaries and severe aggregation. In the present study, a two-dimensional (2D) GA(2)PbI(4) perovskite is prepared via a one-step Lewis acid-base adduct approach in which a 7:3 ratio of 4-tert-butylpyridine (tBP) and thiourea in dimethylformamide is employed as the Lewis base. It is observed that the tBP promotes the layer-by-layer growth of 2D perovskite in two directions by guiding multiple PbI2 layers more effectively. The optimized GA(2)PbI(4) perovskite film exhibits better uniformity, large grain size, reduced trap states, and a lower band gap of 2.03 eV. The device containing the GA(2)PbI(4) perovskite exhibits a PCE of ca. 1.74%, along with long-term durability under ambient conditions, and hysteresis-free current density -voltage behavior. The significant enhancement in the PCE of the GA cation-based PSC leaves scope for further improvement in the perovskite-based devices.
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