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Photodriven Dipole Reordering: Key to Carrier Separation in Metalorganic Halide Perovskites

机译:Photodriven Dipole Reording:Metalorganic Halide Perovskites的载体分离键

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Photodriven dipole reordering of the intercalated organic molecules in halide perovskites has been suggested to be a critical degree of freedom, potentially affecting physical properties, device performance, and stability of hybrid perovskite-based optoelectronic devices. However, thus far a direct atomically resolved dipole mapping under device operation condition, that is, illumination, is lacking. Here, we map simultaneously the molecule dipole orientation pattern and the electrostatic potential with atomic resolution using photo excited cross-sectional scanning tunneling microscopy and spectroscopy. Our experimental observations demonstrate that a photodriven molecule dipole reordering, initiated by a photoexcited separation of electron-hole pairs in spatially displaced orbitals, leads to a fundamental reshaping of the potential landscape in halide perovskites, creating separate one-dimensional transport channels for holes and electrons. We anticipate that analogous light-induced polarization order transitions occur in bulk and are at the origin of the extraordinary efficiencies of organometal halide perovskite-based solar cells as well as could reconcile apparently contradictory materials' properties.
机译:已经提出了卤化物钙胞胎中插入有机分子的光处理的偶极性重新排序是一种临界自由度,可能影响杂交钙钛矿的光电器件的物理性质,装置性能和稳定性。然而,因此缺乏在设备操作条件下的直接原子分辨的偶极映射,即照明。在这里,我们同时映射分子偶极子取向图案和具有原子分辨率的静电电位,使用照片激发横截面扫描隧穿显微镜和光谱。我们的实验观察表明,通过空间移位的轨道中的电子 - 空穴对的光透射分离引发的光电驱动分子偶极子重新排序导致卤化恒静脉潜在景观的基本重塑,从而为孔和电子形成单独的一维传输通道。我们预期类似的光诱导的偏振顺序转变,散装中发生,并且是基于有机计量卤化物的太阳能电池的非凡效率的起源,以及可以调和明显矛盾的材料的性质。

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