Cannelli Oliviero, Colonna Nicola, Puppin Michele, Rossi Thomas C, Kinschel Dominik, Leroy Ludmila M D, Löffler Janina, Budarz James M, March Anne Marie, Doumy Gilles, Al Haddad Andre, Tu Ming-Feng, Kumagai Yoshiaki, Walko Donald, Smolentsev Grigory, Krieg Franziska, Boehme Simon C, Kovalenko Maksym V, Chergui Majed, Mancini Giulia F
Laboratory of Ultrafast Spectroscopy (LSU) and Lausanne Centre for Ultrafast Science (LACUS), École Polytechnique Fédérale de Lausanne, CH-1015 Lausanne, Switzerland.
Laboratory for Neutron Scattering and Imaging, Paul Scherrer Institute, CH-5232 Villigen-PSI, Switzerland.
J Am Chem Soc. 2021 Jun 23;143(24):9048-9059. doi: 10.1021/jacs.1c02403. Epub 2021 Jun 2.
The development of next-generation perovskite-based optoelectronic devices relies critically on the understanding of the interaction between charge carriers and the polar lattice in out-of-equilibrium conditions. While it has become increasingly evident for CsPbBr perovskites that the Pb-Br framework flexibility plays a key role in their light-activated functionality, the corresponding local structural rearrangement has not yet been unambiguously identified. In this work, we demonstrate that the photoinduced lattice changes in the system are due to a specific polaronic distortion, associated with the activation of a longitudinal optical phonon mode at 18 meV by electron-phonon coupling, and we quantify the associated structural changes with atomic-level precision. Key to this achievement is the combination of time-resolved and temperature-dependent studies at Br K and Pb L X-ray absorption edges with refined simulations, which fully account for the screened core-hole final state effects on the X-ray absorption spectra. From the temporal kinetics, we show that carrier recombination reversibly unlocks the structural deformation at both Br and Pb sites. The comparison with the temperature-dependent XAS results rules out thermal effects as the primary source of distortion of the Pb-Br bonding motif during photoexcitation. Our work provides a comprehensive description of the CsPbBr perovskites' photophysics, offering novel insights on the light-induced response of the system and its exceptional optoelectronic properties.
下一代基于钙钛矿的光电器件的发展严重依赖于对非平衡条件下电荷载流子与极性晶格之间相互作用的理解。虽然对于CsPbBr钙钛矿来说,Pb-Br框架的灵活性在其光激活功能中起着关键作用这一点越来越明显,但相应的局部结构重排尚未得到明确识别。在这项工作中,我们证明了该系统中的光致晶格变化是由于一种特定的极化子畸变,它与通过电子-声子耦合激活的18毫电子伏纵向光学声子模式有关,并且我们以原子级精度量化了相关的结构变化。这一成果的关键在于将Br K和Pb L X射线吸收边的时间分辨和温度相关研究与精确模拟相结合,该模拟充分考虑了屏蔽的芯孔终态对X射线吸收光谱的影响。从时间动力学来看,我们表明载流子复合可逆地解锁了Br和Pb位点的结构变形。与温度相关的XAS结果的比较排除了热效应是光激发过程中Pb-Br键合 motif畸变的主要来源。我们的工作全面描述了CsPbBr钙钛矿的光物理性质,为该系统的光致响应及其卓越的光电特性提供了新的见解。