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太赫兹发射来自超快电荷分离和强电子-声子耦合的混合钙钛矿。

Terahertz Emission from Hybrid Perovskites Driven by Ultrafast Charge Separation and Strong Electron-Phonon Coupling.

机构信息

Stanford Institute for Materials and Energy Sciences, SLAC National Accelerator Laboratory, Menlo Park, CA, 94025, USA.

Department of Materials Science and Engineering, Stanford University, Stanford, CA, 94305, USA.

出版信息

Adv Mater. 2018 Mar;30(11). doi: 10.1002/adma.201704737. Epub 2018 Jan 23.

Abstract

Unusual photophysical properties of organic-inorganic hybrid perovskites have not only enabled exceptional performance in optoelectronic devices, but also led to debates on the nature of charge carriers in these materials. This study makes the first observation of intense terahertz (THz) emission from the hybrid perovskite methylammonium lead iodide (CH NH PbI ) following photoexcitation, enabling an ultrafast probe of charge separation, hot-carrier transport, and carrier-lattice coupling under 1-sun-equivalent illumination conditions. Using this approach, the initial charge separation/transport in the hybrid perovskites is shown to be driven by diffusion and not by surface fields or intrinsic ferroelectricity. Diffusivities of the hot and band-edge carriers along the surface normal direction are calculated by analyzing the emitted THz transients, with direct implications for hot-carrier device applications. Furthermore, photogenerated carriers are found to drive coherent terahertz-frequency lattice distortions, associated with reorganizations of the lead-iodide octahedra as well as coupled vibrations of the organic and inorganic sublattices. This strong and coherent carrier-lattice coupling is resolved on femtosecond timescales and found to be important both for resonant and far-above-gap photoexcitation. This study indicates that ultrafast lattice distortions play a key role in the initial processes associated with charge transport.

摘要

有机-无机杂化钙钛矿的不寻常光物理性质不仅使其在光电设备中具有卓越的性能,还引发了关于这些材料中电荷载流子性质的争论。本研究首次观察到在光激发后,混合钙钛矿甲脒碘化铅(CH3NH3PbI3)中产生强烈的太赫兹(THz)发射,从而能够在 1 个太阳等效照明条件下超快速探测电荷分离、热载流子输运和载流子-晶格耦合。通过这种方法,表明混合钙钛矿中的初始电荷分离/输运是由扩散驱动的,而不是由表面场或固有铁电性驱动的。通过分析发射的太赫兹瞬变,计算了沿表面法向方向的热载流子和带边载流子的扩散系数,这对热载流子器件应用有直接影响。此外,还发现光生载流子驱动相干太赫兹频率晶格变形,这与铅-碘八面体的重新排列以及有机和无机亚晶格的耦合振动有关。这种强而相干的载流子-晶格耦合在飞秒时间尺度上得到解决,并且对于共振和远高于带隙的光激发都很重要。本研究表明,超快晶格变形在与电荷输运相关的初始过程中起着关键作用。

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