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Theoretical Study on Rotational Controllability of Organic Cations in Organic-Inorganic Hybrid Perovskites: Hydrogen Bonds and Halogen Substitution

机译:有机 - 无机杂交钙质有机阳离子旋转可控性的理论研究:氢键和卤素取代

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The organic cation dynamics in organic-inorganic hybrid perovskites strongly affect the power energy conversion and unique physical properties of these materials. To date, the first-principles rotational potential energy surface (PES) of formamidinium (FA) has not been reported. Thus, we examined the rotational energy barriers for FA in cubic-phase perovskites (FABX(3) (B = Sn/Pb; X = Cl/Br/I)) by density functional theory and compared these with those of methyl-ammonium. The calculated rotational PES of FAPbI(3) indicates that FA rotates around the N-N bond axis (phi) with a low energy barrier, whereas the energy barrier for FA rotation around the axis penetrating the C atom and the center of gravity of FA (theta) is high. Moreover, the phi and theta rotational barriers of FA increase with halogen substitution. Thus, we reveal important design rules for controlling the rotational barrier and orientation by forming hydrogen bonds and halogen substitution.
机译:有机 - 无机杂交钙酯中的有机阳离子动力学强烈影响这些材料的功率转换和独特的物理性质。 迄今为止,尚未报道甲脒(FA)的第一原理旋转电位能表面(PE)。 因此,我们通过密度官能理论检查了在立方相钙酯(Fabx(3)(B = Sn / Pb; x = Cl / Br / B)中的Fa的旋转能量屏障并将这些与甲基铵的相比进行了比较。 Capbi(3)的计算旋转PE表示,FA围绕NN键合轴(PHI)旋转,具有低能量屏障,而FA旋转的能量屏障围绕轴线旋转,穿透C原子和FA的重心(THETA ) 高。 此外,用卤素取代的FA增加的PHI和Thea旋转屏障。 因此,我们通过形成氢键和卤素取代来揭示用于控制旋转屏障和取向的重要设计规则。

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