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      Surface optimization to eliminate hysteresis for record efficiency planar perovskite solar cells

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          Efficient luminescent solar cells based on tailored mixed-cation perovskites

          Researchers developed a perovskite solar cell with high power-conversion efficiency (>20%) and intense electroluminescence yield (0.5%).
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            Perovskite–fullerene hybrid materials suppress hysteresis in planar diodes

            Solution-processed planar perovskite devices are highly desirable in a wide variety of optoelectronic applications; however, they are prone to hysteresis and current instabilities. Here we report the first perovskite–PCBM hybrid solid with significantly reduced hysteresis and recombination loss achieved in a single step. This new material displays an efficient electrically coupled microstructure: PCBM is homogeneously distributed throughout the film at perovskite grain boundaries. The PCBM passivates the key PbI3 − antisite defects during the perovskite self-assembly, as revealed by theory and experiment. Photoluminescence transient spectroscopy proves that the PCBM phase promotes electron extraction. We showcase this mixed material in planar solar cells that feature low hysteresis and enhanced photovoltage. Using conductive AFM studies, we reveal the memristive properties of perovskite films. We close by positing that PCBM, by tying up both halide-rich antisites and unincorporated halides, reduces electric field-induced anion migration that may give rise to hysteresis and unstable diode behaviour.
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              Hysteresis-less inverted CH3NH3PbI3planar perovskite hybrid solar cells with 18.1% power conversion efficiency

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                Author and article information

                Journal
                EESNBY
                Energy Environ. Sci.
                Energy Environ. Sci.
                Royal Society of Chemistry (RSC)
                1754-5692
                1754-5706
                2016
                2016
                : 9
                : 10
                : 3071-3078
                Article
                10.1039/C6EE02139E
                c9d23cca-7200-4ae1-bf24-ef1b8662c2f7
                © 2016
                History

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