论文标题
通过二维光学KERR效应在铅卤化物钙壶中解码超快极化响应
Decoding Ultrafast Polarization Responses in Lead Halide Perovskites by the Two-Dimensional Optical Kerr Effect
论文作者
论文摘要
对入射光的超快极化响应和随之而来的激子/载体的产生对于铅卤化物钙钛矿(LHP)的出色光电特性至关重要。迄今为止,LHP领域的大量机械研究集中在有机阳离子和高度极化无机晶格中对极化性的贡献。为了全面了解超快极化响应,我们还必须考虑到对传播光场本身的几乎瞬时超极化响应。虽然光传播对光电和光子学是关键的,但在带隙附近的LHP中,这一点鲜为人知,在带刺激的发射,偏振子冷凝,超荧光和光子回收可能会发生。在这里,我们开发了二维光学KERR效应(2D-OK)光谱,以在LHP中能够通过能量解剖宽带光传播和分散性非线性极化响应。与较早的解释相反,发现混合CH3NH3PBBR3和全有机CSPBBR3钙钛矿中的Bandgap Oke反应都来自强大的超可极化性和高度各向异性分散体。在这两种材料中,各向异性传播光场的非线性混合都会导致振荡的振荡极化动力学。基于一个四波混合模型,我们定量得出分散性各向异性,再现2D-OK频率相关性,并在单晶LHP中建立了极化的穿着光传播。此外,我们的发现突出了以各种形式的超快光谱法区分经常被忽略的各向异性光传播与潜在的相干准粒子响应的重要性。
The ultrafast polarization response to incident light and ensuing exciton/carrier generation are essential to outstanding optoelectronic properties of lead halide perovskites (LHPs). A large number of mechanistic studies in the LHP field to date have focused on contributions to polarizability from organic cations and the highly polarizable inorganic lattice. For a comprehensive understanding of the ultrafast polarization response, we must additionally account for the nearly instantaneous hyperpolarizability response to the propagating light field itself. While light propagation is pivotal to optoelectronics and photonics, little is known about this in LHPs in the vicinity of the bandgap where stimulated emission, polariton condensation, superfluorescence, and photon recycling may take place. Here we develop two-dimensional optical Kerr effect (2D-OKE) spectroscopy to energetically dissect broadband light propagation and dispersive nonlinear polarization responses in LHPs. In contrast to earlier interpretations, the below-bandgap OKE responses in both hybrid CH3NH3PbBr3 and all-inorganic CsPbBr3 perovskites are found to originate from strong hyperpolarizability and highly anisotropic dispersions. In both materials, the nonlinear mixing of anisotropically propagating light fields result in convoluted oscillatory polarization dynamics. Based on a four-wave mixing model, we quantitatively derive dispersion anisotropies, reproduce 2D-OKE frequency correlations, and establish polarization dressed light propagation in single crystal LHPs. Moreover, our findings highlight the importance of distinguishing the often-neglected anisotropic light propagation from underlying coherent quasi-particle responses in various forms of ultrafast spectroscopy.