| Literature DB >> 34739745 |
Ligang Xu1,2, Di Wu3, Wenxuan Lv1, Yuan Xiang1, Yan Liu1, Ye Tao1, Jun Yin4, Mengyuan Qian1, Ping Li1, Liuquan Zhang1, Shufen Chen1, Omar F Mohammed4, Osman M Bakr4, Zheng Duan3, Runfeng Chen1, Wei Huang1.
Abstract
Manipulating perovskite crystallization to prepare high-quality perovskite films is the key to achieving highly efficient and stable perovskite solar cells (PSCs). Here, a dynamic strategy is proposed to modulate perovskite crystallization using a resonance hole-transporting material (HTM) capable of fast self-adaptive tautomerization between multiple electronic states with neutral and charged resonance forms for mediating perovskite crystal growth and defect passivation in situ. This approach, based on resonance variation with self-adaptive molecular interactions between the HTM and the perovskite, produces high-quality perovskite films with smooth surface, oriented crystallization, and low charge recombination, leading to high-performance inverted PSCs with power conversion efficiencies approaching 22% for small-area devices (0.09 cm2 ) and up to 19.5% for large-area devices (1.02 cm2 ). Also, remarkably high stability of the PSCs is observed, retaining over 90%, 88%, or 83% of the initial efficiencies in air with relative humidity of 40-50%, under continuous one-sun illumination, or at 75 °C annealing for 1000 h without encapsulation.Entities:
Keywords: crytallization; device stability; passivation; perovskite solar cells; resonance hole-transporting materials
Year: 2021 PMID: 34739745 DOI: 10.1002/adma.202107111
Source DB: PubMed Journal: Adv Mater ISSN: 0935-9648 Impact factor: 30.849