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How to stabilize the HOMO levels and to improve the charge transport properties of hole-transporting materials? Introducing a symmetrical core unit

机译:如何稳定同性恋水平,提高空穴传输材料的电荷运输性能? 引入对称核心单位

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摘要

Designed with a symmetrical core naphthatetrathiophene (NTT) and diphenylamine (DPA)-based side arms, a series of novel organic small molecule hole-transporting materials are simulated for perovskite solar cells (PSCs) by using density functional theory (DFT) and Marcus theory of electron transfer. As a fundamental understanding, the energy level alignments and the charge transport properties are explored for their potential applications. Our results show that, by introducing a symmetrical NIT core and regulating the terminal groups, the highest occupied molecular orbital (HOMO) levels of new predicted molecules are obviously down-shifted from -4.96 eV to -5.25 eV, which is beneficial for enlarging the open circuit voltage of PSCs. Moreover, we also find that rigidifying the core structure can make the HOMO down-shift and the lowest unoccupied molecular orbital (LUMO) up-shift simultaneously. On the other hand, the quasi-planar molecular architecture and the delocalized frontier molecular orbitals can effectively enhance the electronic coupling between adjacent molecules, and coupled with the lower reorganization energies, the hole mobilities of molecules 3-5 are clearly increased with the extension of the pi-conjugated core. In summary, through systemic investigations, several potential candidates are proposed toward more efficient PSCs, and we hope that our work could provide some new clues for the rational design of organic small molecule materials.
机译:用对称的核心核心核(NTT)和二苯胺(DPA)的侧臂设计,通过使用密度函数理论(DFT)和Marcus理论,模拟了一系列新的有机小分子空穴传输材料,用于钙钛矿太阳能电池(PSC)电子转移。作为基本理解,探索能级对准和电荷传输属性用于其潜在应用。我们的研究结果表明,通过引入对称的核心核心并调节终体基团,最高占用的分子轨道(HOMO)水平的新预测分子明显从-4.96 ev转移到-5.25eV,这有利于扩大PSC的开路电压。此外,我们还发现符合核心结构可以同时使核心结构和最低的未占分子轨道(LumO)同时变动。另一方面,准平面分子结构和分层前沿分子轨道可以有效地增强相邻分子之间的电子耦合,并与下重新组织能量耦合,分子3-5的孔迁移率随着延伸而显然增加pi缀合的核心。总之,通过系统调查,提出了一些潜在的候选人,以更有效的PSC,我们希望我们的工作可以为有机小分子材料的合理设计提供一些新的线索。

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