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Thermodynamically stabilized β-CsPbI 3 –based perovskite solar cells with efficiencies >18%
Author(s) -
Yong Wang,
M. Ibrahim Dar,
Luis K. Ono,
Taiyang Zhang,
Miao Kan,
Yawen Li,
Lijun Zhang,
Xingtao Wang,
Yingguo Yang,
Xingyu Gao,
Yabing Qi,
Michaël Grätzel,
Yixin Zhao
Publication year - 2019
Publication title -
science
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 12.556
H-Index - 1186
eISSN - 1095-9203
pISSN - 0036-8075
DOI - 10.1126/science.aav8680
Subject(s) - perovskite (structure) , iodide , analytical chemistry (journal) , band gap , layer (electronics) , materials science , phase (matter) , ion , chemistry , chemical engineering , optoelectronics , crystallography , inorganic chemistry , nanotechnology , chromatography , organic chemistry , engineering
Although β-CsPbI 3 has a bandgap favorable for application in tandem solar cells, depositing and stabilizing β-CsPbI 3 experimentally has remained a challenge. We obtained highly crystalline β-CsPbI 3 films with an extended spectral response and enhanced phase stability. Synchrotron-based x-ray scattering revealed the presence of highly oriented β-CsPbI 3 grains, and sensitive elemental analyses-including inductively coupled plasma mass spectrometry and time-of-flight secondary ion mass spectrometry-confirmed their all-inorganic composition. We further mitigated the effects of cracks and pinholes in the perovskite layer by surface treating with choline iodide, which increased the charge-carrier lifetime and improved the energy-level alignment between the β-CsPbI 3 absorber layer and carrier-selective contacts. The perovskite solar cells made from the treated material have highly reproducible and stable efficiencies reaching 18.4% under 45 ± 5°C ambient conditions.

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