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首页> 外文期刊>The journal of physical chemistry, C. Nanomaterials and interfaces >Dipole Order in Halide Perovskites: Polarization and Rashba Band Splittings
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Dipole Order in Halide Perovskites: Polarization and Rashba Band Splittings

机译:卤化珠普罗夫斯基岩中的偶极命令:极化和拉什巴带分裂

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ABX(3) (A = organic cation; B = Sn, Pb; and X = halogen) organohalide perovskites have recently attracted much attention for their photovoltaic applications. Such hybrid compounds are derived from the replacement of the inorganic monovalent metal element by an organic cation, for example, methylammonium ion (MA = CH3NH3) and formamidinium ion (FA = +HC(NH2)(2)). In particular, since the organic cations are polar, it is interesting to investigate their possible long-range ordering and the corresponding Rashba spin-split bands. In this work, by using density functional theory calculations, we estimate the ferroelectric polarization corresponding to a complete ordering of dipole moments for the optimized structures of 12 perovskite halides, with A = MA, FA; B = Pb, Sn; X = Cl, Br, I. The adiabatic path and functional mode analysis have been discussed for all cases. The calculated values of the polarization may be as high as a conventional inorganic ferroelectric compound, such as BaTiO3. The concomitant inversion symmetry breaking, coupled to the sizable spin-orbit coupling of Pb and Sn, results in a fairly large Rashba spin-splitting effect for both valence and conduction bands. We highlight a rather anisotropic dispersion of spin-orbit split bands which gives rise to different Rashba parameters in different directions perpendicular to the polar axis in k-space. Furthermore, we found a weak and positive correlation between the magnitude of polarization and relevant spin-split band parameters. Since the mechanism for enhanced carrier lifetime in 3D Rashba materials is connected to the reduced recombination rate due to the spin-forbidden transition, our study could aid in the understanding of the fundamental physics of organometal halide perovskites and the optimization and design of materials for better performance.
机译:ABX(3)(a =有机阳离子; b = sn,pb;和x =卤素)有机卤化物钙钛矿最近吸引了它们的光伏应用的巨大关注。这种杂化化合物通过有机阳离子替换无机一价金属元素,例如甲基铵离子(MA = CH 3 NH 3)和甲脒离子(FA = + HC(NH 2)(2))。特别地,由于有机阳离子是极性的,因此研究其可能的长范围排序和相应的RASHBA旋转分体带是有趣的。在这项工作中,通过使用密度函数理论计算,我们估计与偶极子卤化物的优化结构的完整排序相对应的铁电偏振,以a = ma,fa; b = pb,sn; X = CL,B,I。所有情况都讨论了绝热路径和功能模式分析。偏振的计算值可以高于常规无机铁电化合物,例如BATIO3。伴随的反演对称性断裂,耦合到Pb和Sn的可大幅的旋转轨道耦合,导致价值和传导带的相当大的Rashba旋转分裂效果。我们突出了旋转轨道分体带的相当各向异性的分散,这在垂直于k空间中的极轴的不同方向上产生不同的拉什巴参数。此外,我们发现了极化幅度与相关的自旋分流带参数之间的弱和正相关。由于3D Rashba材料中增强载体寿命的机制是由于旋转禁止转变而导致的重组率降低,我们的研究可以帮助理解有机卤化物钙酸盐的基本物理学和材料的优化和设计表现。

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