Yun Yeonghun, Vidyasagar Devthade, Lee Minho, Gong Oh Yeong, Jung Jina, Jung Hyun-Suk, Kim Dong Hoe, Lee Sangwook
School of Materials Science and Engineering, Kyungpook National University, Daegu, 41566, Republic of Korea.
School of Advanced Materials Science and Engineering, Sungkyunkwan University, Suwon, 16419, Republic of Korea.
Adv Sci (Weinh). 2021 Nov;8(21):e2102492. doi: 10.1002/advs.202102492. Epub 2021 Sep 17.
Solvent engineering by Lewis-base solvent and anti-solvent is well known for forming uniform and stable perovskite thin films. The perovskite phase crystallizes from an intermediate Lewis-adduct upon annealing-induced crystallization. Herein, it is explored the effects of trimethyl phosphate (TMP), as a novel aprotic Lewis-base solvent with a low donor number for the perovskite film formation and photovoltaic characteristics of perovskite solar cells (PSCs). As compared to dimethylsulfoxide (DMSO) or dimethylformamide (DMF), the usage of TMP directly crystallizes the perovskite phase, i.e., reduces the intermediate phase to a negligible degree, right after the spin-coating, owing to the high miscibility of TMP with the anti-solvent and weak bonding in the Lewis adduct. Interestingly, the PSCs based on methylammonium lead iodide (MAPbI ) derived from TMP/DMF-mixed solvent exhibit a higher average power conversion efficiency of 19.68% (the best: 20.02%) with a smaller hysteresis in the current-voltage curve, compared to the PSCs that are fabricated using DMSO/DMF-mixed (19.14%) or DMF-only (18.55%) solvents. The superior photovoltaic properties are attributed to the lower defect density of the TMP/DMF-derived perovskite film. The results indicate that a high-performance PSC can be achieved by combining a weak Lewis base with a well-established solvent engineering process.
通过路易斯碱溶剂和反溶剂进行溶剂工程以形成均匀且稳定的钙钛矿薄膜而闻名。钙钛矿相在退火诱导结晶时从中间路易斯加合物中结晶出来。在此,研究了磷酸三甲酯(TMP)作为一种新型非质子路易斯碱溶剂对钙钛矿薄膜形成和钙钛矿太阳能电池(PSC)光伏特性的影响,该溶剂给体数低。与二甲基亚砜(DMSO)或二甲基甲酰胺(DMF)相比,由于TMP与反溶剂的高混溶性以及路易斯加合物中的弱键合,TMP的使用在旋涂后直接使钙钛矿相结晶,即把中间相减少到可忽略的程度。有趣的是,与使用DMSO/DMF混合溶剂(19.14%)或仅使用DMF溶剂(在电流-电压曲线中滞后较小,基于TMP/DMF混合溶剂衍生的甲基铵碘化铅(MAPbI)的PSC表现出更高的平均功率转换效率,为19.68%(最佳:20.02%)18.55%)制备的PSC相比。优异的光伏性能归因于TMP/DMF衍生的钙钛矿薄膜较低的缺陷密度。结果表明,通过将弱路易斯碱与成熟的溶剂工程工艺相结合,可以实现高性能的PSC。