Dhanabalan Balaji, Leng Yu-Chen, Biffi Giulia, Lin Miao-Ling, Tan Ping-Heng, Infante Ivan, Manna Liberato, Arciniegas Milena P, Krahne Roman
Istituto Italiano di Tecnologia (IIT), Via Morego 30, 16163 Genoa, Italy.
Dipartimento di Chimica e Chimica Industriale, Università degli Studi di Genova, Via Dodecaneso, 31, 16146 Genova, Italy.
ACS Nano. 2020 Apr 28;14(4):4689-4697. doi: 10.1021/acsnano.0c00435. Epub 2020 Apr 15.
The vibrational modes in organic/inorganic layered perovskites are of fundamental importance for their optoelectronic properties. The hierarchical architecture of the Ruddlesden-Popper phase of these materials allows for distinct directionality of the vibrational modes with respect to the main axes of the pseudocubic lattice in the octahedral plane. Here, we study the directionality of the fundamental phonon modes in single exfoliated Ruddlesden-Popper perovskite flakes with polarized Raman spectroscopy at ultralow frequencies. A wealth of Raman bands is distinguished in the range from 15 to 150 cm (2-15 meV), whose features depend on the organic cation species, on temperature, and on the direction of the linear polarization of the incident light. By controlling the angle of the linear polarization of the excitation laser with respect to the in-plane axes of the octahedral layer, we gain detailed information on the symmetry of the vibrational modes. The choice of two different organic moieties, phenethylammonium (PEA) and butylammonium (BA), allows us to discern the influence of the linker molecules, evidencing strong anisotropy of the vibrations for the (PEA)PbBr samples. Temperature-dependent Raman measurements reveal that the broad phonon bands observed at room temperature consist of a series of sharp modes and that such mode splitting strongly differs for the different organic moieties and vibrational bands. Softer molecules such as BA result in lower vibrational frequencies and splitting into fewer modes, while more rigid molecules such as PEA lead to higher frequency oscillations and larger number of Raman peaks at low temperature. Interestingly, in distinct bands the number of peaks in the Raman bands is doubled for the rigid PEA compared to the soft BA linkers. Our work shows that the coupling to specific vibrational modes can be controlled by the incident light polarization and choice of the organic moiety, which could be exploited for tailoring exciton-phonon interaction, and for optical switching of the optoelectronic properties of such 2D layered materials.
有机/无机层状钙钛矿中的振动模式对其光电特性至关重要。这些材料的Ruddlesden-Popper相的分层结构使得振动模式在八面体平面内相对于伪立方晶格的主轴具有明显的方向性。在此,我们利用超低频偏振拉曼光谱研究了单个剥离的Ruddlesden-Popper钙钛矿薄片中基本声子模式的方向性。在15至150厘米(2 - 15毫电子伏特)范围内可分辨出大量拉曼带,其特征取决于有机阳离子种类、温度以及入射光线性偏振的方向。通过控制激发激光的线性偏振角度相对于八面体层的面内轴,我们获得了关于振动模式对称性的详细信息。选择两种不同的有机部分,苯乙铵(PEA)和丁铵(BA),使我们能够辨别连接分子的影响,证明了(PEA)PbBr样品振动的强各向异性。温度相关的拉曼测量表明,在室温下观察到的宽声子带由一系列尖锐模式组成,并且这种模式分裂因不同的有机部分和振动带而有很大差异。像BA这样较软的分子导致较低的振动频率并分裂成较少的模式,而像PEA这样较刚性的分子在低温下导致较高频率的振荡和更多数量的拉曼峰。有趣的是,在不同的带中,与软BA连接体相比,刚性PEA的拉曼带中的峰数增加了一倍。我们的工作表明,与特定振动模式的耦合可以通过入射光偏振和有机部分的选择来控制,这可用于调整激子 - 声子相互作用以及此类二维层状材料光电特性的光学开关。