Krahne Roman, Lin Miao-Ling, Tan Ping-Heng
Optoelectronics, Istituto Italiano di Tecnologia (IIT), Via Morego 30, 16163 Genoa, Italy.
State Key Laboratory of Superlattices and Microstructures, Institute of Semiconductors, Chinese Academy of Sciences, Beijing 100083, China.
Acc Chem Res. 2024 Sep 3;57(17):2476-2489. doi: 10.1021/acs.accounts.4c00259. Epub 2024 Aug 21.
ConspectusLayered metal halide perovskites represent a natural quantum well system for charge carriers that provides rich physics, and the organic encapsulation of the inorganic metal halide layers not only increases their stability in devices but also provides an immense freedom to design their functionality. Intriguingly, these organic moieties strongly impact the optical, electrical, and mechanical properties, not only through their dielectric, elastic, and chemical properties but also because of induced mechanical distortions in the inorganic lattice. This tunability makes two-dimensional layered perovskites (2DLPs) highly attractive as light emitters. Common consensus is that exciton-phonon coupling plays an important role in radiative recombination. For bulk and some two-dimensional (2D) materials, the band edge emission broadening can be described by the classic models for polar inorganic semiconductors, while for the temperature dependence of the self-trapped exciton emission, an analysis developed for color centers has been successfully applied. For many 2DLPs these approaches do not work because of the complexity of their vibrational spectra. However, their emission is still strongly determined by phonons, and therefore, an adequate understanding of the electron-phonon coupling needs to be developed.With polarized and angle-resolved Raman spectroscopy studies on single 2DLP flakes based on different ammonium molecules as organic cations, in 2020 we revealed very rich phonon spectra in the low-frequency regime. Although the phonon bands at low frequency can generally be attributed to the vibrations of the inorganic lattice, we found very different responses by only changing the type of organic cations. In addition, the intensity of the different phonon modes depended strongly on the angle of the linearly polarized excitation beam with respect to the in-plane axes of the octahedron lattice. In 2022, we mapped this angular dependence of the phonon modes, which allowed identification of the directionality of the different lattice vibrations. By correlating the phonon spectra with the temperature-dependent emission for a set of 2DLPs that featured very different self-trapped exciton (STE) emission, we demonstrated that the exciton relaxation cannot be related to coupling with a single (longitudinal-optical) phonon band and that several phonon bands should be involved in the emission process. To gain insights into the exciton-phonon coupling effects on the band edge emission, we performed both angle-resolved polarized emission and Raman spectroscopy on single 2D lead iodide perovskite microcrystals. These experiments revealed the impact of the organic cations on the linear polarization of the emission and corroborated that multiple phonon bands should be involved in the radiative recombination process. Analysis of the temperature-dependent line width broadening of the band edge emission showed that for many systems, the behavior cannot be described by assuming the involvement of only one phonon mode in the electron-phonon coupling process. Our studies revealed a wealth of highly directional low-frequency phonons in 2DLPs from which several bands are involved in the emission process, which leads to diverse optical and vibrational properties depending on the type of organic cation in the material.
综述
层状金属卤化物钙钛矿是一种天然的电荷载流子量子阱系统,具有丰富的物理特性,无机金属卤化物层的有机封装不仅提高了它们在器件中的稳定性,还为设计其功能提供了极大的自由度。有趣的是,这些有机部分不仅通过其介电、弹性和化学性质,而且由于无机晶格中诱导的机械畸变,对光学、电学和机械性能产生强烈影响。这种可调谐性使二维层状钙钛矿(2DLP)作为发光体极具吸引力。普遍的共识是,激子-声子耦合在辐射复合中起重要作用。对于体材料和一些二维(2D)材料,带边发射展宽可以用极性无机半导体的经典模型来描述,而对于自陷激子发射的温度依赖性,为色心开发的一种分析方法已成功应用。对于许多2DLP来说,由于其振动光谱的复杂性,这些方法并不适用。然而,它们的发射仍然强烈地由声子决定,因此,需要对电子-声子耦合有充分的理解。
通过对基于不同铵分子作为有机阳离子的单个2DLP薄片进行偏振和角分辨拉曼光谱研究,我们在2020年揭示了低频区域非常丰富的声子光谱。虽然低频声子带通常可归因于无机晶格的振动,但我们发现仅改变有机阳离子的类型就会产生非常不同的响应。此外,不同声子模式的强度强烈依赖于线偏振激发光束相对于八面体晶格面内轴的角度。在2022年,我们绘制了声子模式的这种角度依赖性,这使得能够识别不同晶格振动的方向性。通过将一组具有非常不同自陷激子(STE)发射的2DLP的声子光谱与温度依赖性发射相关联,我们证明了激子弛豫不能与单个(纵向光学)声子带的耦合相关,并且发射过程中应该涉及几个声子带。为了深入了解激子-声子耦合对带边发射的影响,我们对单个二维碘化铅钙钛矿微晶进行了角分辨偏振发射和拉曼光谱研究。这些实验揭示了有机阳离子对发射线性偏振的影响,并证实了辐射复合过程中应该涉及多个声子带。对带边发射的温度依赖性线宽展宽的分析表明,对于许多系统,假设在电子-声子耦合过程中仅涉及一种声子模式无法描述其行为。我们的研究揭示了2DLP中大量高度定向的低频声子,其中几个带参与发射过程,这导致根据材料中有机阳离子的类型而具有不同的光学和振动特性。