Amino-functionalized conjugated polymer electron transport layers enhance the UV-photostability of planar heterojunction perovskite solar cells.
Dan LiChen SunHao LiHui ShiXuxia ShaiQiang SunJunbo HanYan ShenHin-Lap YipFei HuangMingkui WangPublished in: Chemical science (2017)
In this study, for the first time, we report a solution-processed amino-functionalized copolymer semiconductor (PFN-2TNDI) with a conjugated backbone composed of fluorine, naphthalene diimide, and thiophene spacers as the electron transporting layer (ETL) in n-i-p planar structured perovskite solar cells. Using this copolymer semiconductor in conjunction with a planar n-i-p heterojunction, we achieved an unprecedented efficiency of ∼16% under standard illumination test conditions. More importantly, the perovskite devices using this polymer ETL have shown good stability under constant ultra violet (UV) light soaking during 3000 h of accelerated tests. Various advanced spectroscopic characterizations, including ultra-fast spectroscopy, ultra-violet photoelectron spectroscopy and electronic impedance spectroscopy, elucidate that the interaction between the functional polymer ETL and the perovskite layer plays a critical role in trap passivation and thus, the device UV-photostability. We expect that these results will boost the development of low temperature solution-processed organic ETL materials, which is essential for the commercialization of high-performance and stable, flexible perovskite solar cells.
Keyphrases
- perovskite solar cells
- high resolution
- solar cells
- solid state
- room temperature
- single molecule
- photodynamic therapy
- quantum dots
- high efficiency
- drug release
- mass spectrometry
- molecular docking
- aqueous solution
- molecularly imprinted
- positron emission tomography
- drug delivery
- magnetic resonance
- electron microscopy
- electron transfer
- water soluble
- dual energy