Xu Jixian, Buin Andrei, Ip Alexander H, Li Wei, Voznyy Oleksandr, Comin Riccardo, Yuan Mingjian, Jeon Seokmin, Ning Zhijun, McDowell Jeffrey J, Kanjanaboos Pongsakorn, Sun Jon-Paul, Lan Xinzheng, Quan Li Na, Kim Dong Ha, Hill Ian G, Maksymovych Peter, Sargent Edward H
Department of Electrical and Computer Engineering, University of Toronto, 10 King's College Road, Toronto, Ontario M5S 3G4, Canada.
Center for Nanophase Materials Sciences, Oak Ridge National Laboratory, 1 Bethel Valley Road, Oak Ridge, Tennessee 37831, USA.
Nat Commun. 2015 May 8;6:7081. doi: 10.1038/ncomms8081.
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.
溶液处理的平面钙钛矿器件在各种光电器件应用中非常理想;然而,它们容易出现滞后现象和电流不稳定性。在此,我们报道了首个通过一步法实现显著降低滞后现象和复合损耗的钙钛矿-PCBM混合固体。这种新材料呈现出一种高效的电耦合微观结构:PCBM在钙钛矿晶界处均匀分布于整个薄膜中。理论和实验表明,PCBM在钙钛矿自组装过程中钝化了关键的PbI3(-)反位缺陷。光致发光瞬态光谱证明PCBM相促进了电子提取。我们在具有低滞后现象和增强光电压的平面太阳能电池中展示了这种混合材料。通过导电原子力显微镜研究,我们揭示了钙钛矿薄膜的忆阻特性。我们最后提出,PCBM通过束缚富含卤化物的反位和未结合的卤化物,减少了可能导致滞后现象和不稳定二极管行为的电场诱导阴离子迁移。