Autor: |
Sajid S; Department of Chemical & Petroleum Engineering, United Arab Emirates University, P.O. Box 15551, Al Ain, United Arab Emirates. s.alzahmi@uaeu.ac.ae.; National Water and Energy Center, United Arab Emirates University, P.O. Box 15551, Al Ain, United Arab Emirates., Alzahmi S; Department of Chemical & Petroleum Engineering, United Arab Emirates University, P.O. Box 15551, Al Ain, United Arab Emirates. s.alzahmi@uaeu.ac.ae.; National Water and Energy Center, United Arab Emirates University, P.O. Box 15551, Al Ain, United Arab Emirates., Tabet N; Department of Applied Physics and Astronomy, University of Sharjah, P.O. Box 27272, United Arab Emirates. iobaidat@sharjah.ac.ae., Al-Haik MY; Department of Sustainable and Renewable Energy Engineering, University of Sharjah, Sharjah, 27272, United Arab Emirates.; Department of Mechanical Engineering, Higher Colleges of Technology, 25035, Abu Dhabi, United Arab Emirates., Mahmoud ST; Department of Physics, United Arab Emirates University, P.O. Box 15551, Al Ain, United Arab Emirates., Haik Y; Department of Mechanical and Nuclear Engineering, University of Sharjah, Sharjah, United Arab Emirates.; Department of Mechanical Engineering, The University of Jordan, Amman, Jordan., Elseman AM; Central Metallurgical Research & Development Institute (CMRDI), Cairo, Egypt., Obaidat IM; Department of Applied Physics and Astronomy, University of Sharjah, P.O. Box 27272, United Arab Emirates. iobaidat@sharjah.ac.ae. |
Abstrakt: |
Perovskite solar cells (PSCs) with high power conversion efficiencies (PCEs) can be produced using a variety of methods, such as different fabrication methods, device layout modification, and component and interface engineering. The efficiency of a perovskite solar cell is largely dependent on the overall quality of the perovskite thin-film in every scenario. The utilization of spin-coating followed by the antisolvent pouring (ASP) method is prevalent in nearly all fabrication techniques to achieve superior perovskite thin-films. Nevertheless, there are a few guidelines that must be followed precisely when using the ASP approach, including the antisolvent amount, duration, and area for dropping. The aforementioned challenging and necessary strategies frequently result in perovskite thin-films with pinholes, tiny grains, and broad grain boundaries, which impair the performance of PSCs. Therefore, the implementation of a straightforward approach that does not require the use of such complex ASP steps is crucial. Here, we employ a simple process that involves the hot-dipping of lead iodide (PbI 2 ) thin-films in a hot solution of methylammonium iodide (MAI) and formamidinium iodide (FAI) in isopropanol (IPA) to produce high-quality perovskite thin-films. As the time required for the desired perovskite to crystallize is critical, we carefully examined various hot-dipping process times, such as 10 seconds, 20 seconds, 30 seconds, and 40 seconds. These time intervals yielded thin-films, which were named PSK-10, PSK-20, PSK-30, and PSK-40, respectively. Morphological and optoelectronic characterization demonstrated the high quality of the perovskite thin-films obtained through dipping PbI 2 for 30 seconds. Consequently, the PSK-30-based PSCs produced higher PCEs of up to 21.52% compared to those of the ASP-based devices (20.79%). Furthermore, the unsealed PSCs prepared with PSK-30 and ASP were assessed for 252 hours at 25 °C and 40-45% relative humidity in order to determine their operational stability. The ASP-based device showed poor stability, retaining only 10% of its original PCE, whereas the PSK-30-based device retained 70% of its initial PCE. These results offer a new and viable approach for producing highly efficient and stable PSCs. |