| Literature DB >> 35384082 |
Zhonghao Zheng1, Faming Li1,2, Jue Gong1, Yinyi Ma1, Jinwen Gu1, Xiaochun Liu1, Shuhan Chen1, Mingzhen Liu1,2.
Abstract
Halide perovskites have shown superior potentials in flexible photovoltaics due to their soft and high power-to-weight nature. However, interfacial residual stress and lattice mismatch due to the large deformation of flexible substrates have greatly limited the performance of flexible perovskite solar cells (F-PSCs). Here, ammonium formate (HCOONH4 ) is used as a pre-buried additive in electron transport layer (ETL) to realize a bottom-up infiltration process for an in situ, integral modification of ETL, perovskite layer, and their interface. The HCOONH4 treatment leads to an enhanced electron extraction in ETL, relaxed residual strain and micro-strain in perovskite film, along with reduced defect densities within these layers. As a result, a top power conversion efficiency of 22.37% and a certified 21.9% on F-PSCs are achieved, representing the highest performance reported so far. This work links the critical connection between multilayer mechanics/defect profiles of ETL-perovskite structure and device performance, thus providing meaningful scientific direction to further narrowing the efficiency gap between F-PSCs and rigid-substrate counterparts.Entities:
Keywords: flexible perovskite solar cells; interfacial adhesion; mechanical durability; pre-buried additives; residual stress
Year: 2022 PMID: 35384082 DOI: 10.1002/adma.202109879
Source DB: PubMed Journal: Adv Mater ISSN: 0935-9648 Impact factor: 30.849