Chen Emily Y, Monserrat Bartomeu
Cavendish Laboratory, University of Cambridge, J. J. Thomson Avenue, Cambridge CB3 0HE, United Kingdom.
Department of Materials Science and Engineering, Stanford University, 496 Lomita Mall, Stanford, California 94305, United States.
J Phys Chem C Nanomater Interfaces. 2024 Jul 16;128(29):12194-12205. doi: 10.1021/acs.jpcc.4c01633. eCollection 2024 Jul 25.
We present the vibrational properties and phonon dispersion for quasi-2D hybrid organic-inorganic perovskites (BA)CsPbI, (HA)CsPbI, (BA)(MA)PbI, and (HA)(MA)PbI calculated from first principles. Given the highly complex nature of these compounds, we first perform careful benchmarking and convergence testing to identify suitable parameters to describe their structural features and vibrational properties. We find that the inclusion of van der Waals corrections on top of generalized gradient approximation (GGA) exchange-correlation functionals provides the best agreement for the equilibrium structure relative to experimental data. We also investigate the impact of the molecular orientation on the equilibrium structure of these layered perovskite systems. Our results suggest ground state ferroelectric alignment of molecular dipoles in the out-of-plane direction is unlikely and support the assignment of the centrosymmetric space group for the low-temperature phase of (HA)(MA)PbI. Finally, we compute vibrational properties under the harmonic approximation. We find that stringent energy cut-offs are required to obtain well-converged phonon properties, and once converged, the harmonic approximation can capture key physics for such a large, hybrid inorganic-organic system with vastly different atom types, masses, and interatomic interactions. We discuss the obtained phonon modes and dispersion behavior in the context of known properties for bulk 3D perovskites and ligand molecular crystals. While many vibrational properties are inherited from the parent systems, we also observe unique coupled vibrations that cannot be associated with vibrations of the pure constituent perovskite and ligand subphases. Energy dispersion of the low energy phonon branches primarily occurs in the in-plane direction and within the perovskite subphase and arises from bending and breathing modes of the equatorial Pb-I network within the perovskite octahedral plane. The analysis herein provides the foundation for future investigations on this class of materials, such as exciton-phonon coupling, phase transitions, and general temperature-dependent properties.
我们展示了通过第一性原理计算得到的准二维有机-无机杂化钙钛矿(BA)CsPbI、(HA)CsPbI、(BA)(MA)PbI 和(HA)(MA)PbI 的振动特性和声子色散。鉴于这些化合物的高度复杂性,我们首先进行了仔细的基准测试和收敛性测试,以确定描述其结构特征和振动特性的合适参数。我们发现,在广义梯度近似(GGA)交换关联泛函之上包含范德华修正,能使平衡结构与实验数据达到最佳吻合。我们还研究了分子取向对这些层状钙钛矿体系平衡结构的影响。我们的结果表明,分子偶极子在面外方向的基态铁电排列不太可能,并支持将(HA)(MA)PbI 低温相的中心对称空间群进行归属。最后,我们在简谐近似下计算了振动特性。我们发现需要严格的能量截止值才能获得收敛良好的声子特性,并且一旦收敛,简谐近似就能捕捉到这样一个具有极不相同的原子类型、质量和原子间相互作用的大型有机-无机混合体系的关键物理性质。我们在已知的体相三维钙钛矿和配体分子晶体性质的背景下讨论了所获得的声子模式和色散行为。虽然许多振动特性是从母体体系继承而来的,但我们也观察到了独特的耦合振动,这些振动与纯组分钙钛矿和配体子相的振动无关。低能声子分支的能量色散主要发生在面内方向且在钙钛矿子相内,并且源于钙钛矿八面体平面内赤道 Pb-I 网络的弯曲和呼吸模式。本文的分析为今后对这类材料的研究奠定了基础,例如激子-声子耦合、相变以及一般的温度相关性质。