Inui Guilherme K, Besse Rafael, González José E, Da Silva Juarez L F
São Carlos Institute of Chemistry, University of São Paulo, P.O. Box 780, São Carlos, SP, 13560-970, Brazil.
University of Brasília, Institute of Physics, Brasília, DF, 70910-970, Brazil.
Phys Chem Chem Phys. 2024 Jun 12;26(23):16719-16731. doi: 10.1039/d4cp00924j.
The incorporation of chiral molecules (A) in materials based on hybrid ABX perovskites has opened new paths to tune the optoelectronic properties of perovskites through the transfer of chirality to the inorganic BX framework. However, our atomistic understanding of the role of chemical BX composition in the magnitude of the chirality transfer is far from complete. In this study, we use density functional theory calculations and the experimental Ruddlesden-Popper chiral (-/-NEA)PbBr structure (-/-NEA = -/-1-(1-naphthyl)ethylammonium) to investigate the effects induced by chemical substitution of Pb by Ge or Sn and Br by Cl or I on the transfer of chirality and physical-chemical properties. We have observed that different enantiomers result in opposing orientations of octahedral tiltings within the inorganic framework, thus transferring chirality to the inorganic structure. The tilts are greater in perovskites based on Pb and decrease in the sequence of Cl to Br to I, as a consequence of the decrease in the halide electronegativity that weakens the interactions between X and the -NH group of the NEA chiral cation. The chirality transfer is also evident in the Rashba-Dresselhaus effects on the electronic band structure, in which we found magnitudes directly correlated to the trends of octahedra tilting. The band offsets of substitutions B and X are predominantly influenced by their natural atomic energy levels, while organic molecules play a pivotal role in modulating the ionic potential and electron affinity in systems containing light atoms. The band gap values range from 1.91 up to 3.77 eV, with chirality and anion electronegativity providing significant tuning effects on whether the band gaps are direct or indirect.
将手性分子(A)引入基于混合ABX钙钛矿的材料中,通过将手性转移到无机BX框架,为调节钙钛矿的光电性能开辟了新途径。然而,我们对化学BX组成在手性转移程度中所起作用的原子层面理解还远未完善。在本研究中,我们使用密度泛函理论计算以及实验性的Ruddlesden-Popper手性(-/-NEA)PbBr结构(-/-NEA = -/-1-(1-萘基)乙铵),来研究用Ge或Sn取代Pb以及用Cl或I取代Br所引起的化学取代对手性转移和物理化学性质的影响。我们观察到,不同的对映异构体导致无机框架内八面体倾斜方向相反,从而将手性转移到无机结构中。基于Pb的钙钛矿中倾斜更大,并且随着Cl到Br再到I顺序递减,这是由于卤化物电负性降低削弱了X与NEA手性阳离子的-NH基团之间的相互作用。手性转移在电子能带结构的Rashba-Dresselhaus效应中也很明显,我们发现其大小与八面体倾斜趋势直接相关。取代B和X的能带偏移主要受其天然原子能级影响,而有机分子在调节含轻原子体系的离子势和电子亲和力方面起着关键作用。带隙值范围从1.91到3.77 eV,手性和阴离子电负性对带隙是直接还是间接提供了显著的调节作用。