论文标题
光诱导的振动驱动铅卤化物钙钛矿中的超快结构失真
Photoinduced Vibrations Drive Ultrafast Structural Distortion in Lead Halide Perovskite
论文作者
论文摘要
有机无机钙钛矿对它们在光电学中的应用表现出了巨大的希望。这类材料的成功取决于各种基础微观现象之间的复杂相互作用。假设有机阳离子的结构动力学和无机sublattice的无机sublatice被认为对材料特性有直接影响,从而影响了整体设备的性能。在这里,我们使用二维(2D)电子光谱镜头来揭示甲基铵(MA)铅碘化物钙钛矿的冲动激发振动模式,这些模式在光激发后驱动结构失真。测量数据的振动分析使我们能够直接监视MA阳离子的库运动的时间演变以及无机sublattice的振动相干。对观察到的振动相干的小波分析发现了这两种类型的声子之间的相互作用。它揭示了在〜300 fs内的升级运动的连贯产生,这与无机sublattice的骨骼运动的连贯演化相辅相成。我们已经使用时间依赖性密度功能理论(TDDFT)来研究光激发过程中MA阳离子和无机sublattice的原子运动。 TDDFT计算支持我们对MA阳离子中库动作相干产生的实验性观察,并强调了MA阳离子与无机sublattice之间非旋转相互作用的重要性。我们的计算预测了光诱导的振动相干性从MA阳离子到无机sublattice,该振动驱动骨骼运动以形成极性状态,从而导致电荷载体的寿命长。这项工作可能导致下一代太阳能电池材料的新设计原理。
Organic-inorganic perovskites have shown great promise towards their application in optoelectronics. The success of this class of material is dictated by the complex interplay between various underlying microscopic phenomena. The structural dynamics of organic cations and the inorganic sublattice after photoexcitation is hypothesized to have a direct effect on the material properties, thereby affecting the overall device performance. Here, we use two-dimensional (2D) electronic spectroscopy to reveal impulsively excited vibrational modes of methylammonium (MA) lead iodide perovskite, which drive the structural distortion after photoexcitation. The vibrational analysis of the measured data allows us to directly monitor the time evolution of the librational motion of the MA cation along with the vibrational coherences of inorganic sublattice. Wavelet analysis of the observed vibrational coherences uncovers the interplay between these two types of phonons. It reveals the coherent generation of the librational motion of the MA cation within ~300 fs, which is complemented by the coherent evolution of the skeletal motion of the inorganic sublattice. We have employed time-dependent density functional theory (TDDFT) to study the atomic motion of the MA cation and the inorganic sublattice during the process of photoexcitation. The TDDFT calculations support our experimental observations of the coherent generation of librational motions in the MA cation and highlight the importance of the anharmonic interaction between the MA cation and the inorganic sublattice. Our calculations predict the transfer of the photoinduced vibrational coherence from the MA cation to the inorganic sublattice, which drives the skeleton motion to form a polaronic state leading to long lifetimes of the charge carriers. This work may lead to novel design principles for next generation of solar cell materials.