| Literature DB >> 26278080 |
Fabian C Hanusch1, Erwin Wiesenmayer2, Eric Mankel3, Andreas Binek1, Philipp Angloher1, Christina Fraunhofer1, Nadja Giesbrecht1, Johann M Feckl1, Wolfram Jaegermann3, Dirk Johrendt2, Thomas Bein1, Pablo Docampo1.
Abstract
The development of medium-bandgap solar cell absorber materials is of interest for the design of devices such as tandem solar cells and building-integrated photovoltaics. The recently developed perovskite solar cells can be suitable candidates for these applications. At present, wide bandgap alkylammonium lead bromide perovskite absorbers require a high-temperature sintered mesoporous TiO2 photoanode in order to function efficiently, which makes them unsuitable for some of the above applications. Here, we present for the first time highly efficient wide bandgap planar heterojunction solar cells based on the structurally related formamidinium lead bromide. We show that this material exhibits much longer diffusion lengths of the photoexcited species than its methylammonium counterpart. This results in planar heterojunction solar cells exhibiting power conversion efficiencies approaching 7%. Hence, formamidinium lead bromide is a strong candidate as a wide bandgap absorber in perovskite solar cells.Entities:
Keywords: FAPbBr3; crystal structure; formamidinium lead bromide; planar heterojunction; wide bandgap perovskite
Year: 2014 PMID: 26278080 DOI: 10.1021/jz501237m
Source DB: PubMed Journal: J Phys Chem Lett ISSN: 1948-7185 Impact factor: 6.475