弯曲Pyrenacenes以填充单核裂变太阳能电池中的间隙

C. Cruz, Joshua C. Walsh, M. Juríček
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引用次数: 0

摘要

单核裂变被设想为将单结太阳能电池的效率提高到目前的理论极限之外。尽管有效地进行单线态裂变的敏化剂是已知的,但低能量三线态或稳定性不足等特性限制了它们在硅基太阳能电池中的使用。Pyrenacenes有可能克服这些限制,但这些材料中的单线态裂变过程被准分子的形成所击败。在这项工作中,通过计算,将具有降低的堆叠倾向并因此形成激发基的弯曲吡喃烯评估为单线态裂变材料。通过(TD)-DFT计算,在一系列弯曲的吡喃烯中估算了S1、T1和T2态的能量。我们的结果显示了对苝二亚胺观察到的相反趋势,即弯曲时T1和S1状态的能量增加。此外,我们还表明,可以根据需要通过操纵弯曲角度来调整能级,以匹配可用于单结太阳能电池的各种半导体的能隙,从而使吡喃烯有望用于单线态裂变。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Bending Pyrenacenes to Fill Gaps in Singlet-Fission-Based Solar Cells

Bending Pyrenacenes to Fill Gaps in Singlet-Fission-Based Solar Cells
Singlet fission is envisaged to enhance the efficiency of single-junction solar cells beyond the current theoretical limit. Even though sensitizers that undergo singlet fission efficiently are known, characteristics like low-energy triplet state or insufficient stability restrict their use in silicon-based solar cells. Pyrenacenes have the potential to overcome these limitations, but singlet-fission processes in these materials is outcompeted by excimer formation. In this work, bent pyrenacenes with a reduced propensity to stack and thus form excimers are computationally evaluated as singlet-fission materials. The energies of the S1, T1 and T2 states were estimated in a series of bent pyrenacenes by means of (TD)-DFT calculations. Our results show the opposite trend observed for perylene diimides, namely, an increase in the energy of the T1 and S1 states upon bending. In addition, we show that the energy levels can be tuned on demand by manipulating the bend angle to match the energy gap of various semiconductors that can be used in single-junction solar cells, making pyrenacenes promising candidates for singlet fission.
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CiteScore
3.70
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