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首页> 外文期刊>Angewandte Chemie >Tuning the Hybridization of Local Exciton and Charge-Transfer States in Highly Efficient Organic Photovoltaic Cells
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Tuning the Hybridization of Local Exciton and Charge-Transfer States in Highly Efficient Organic Photovoltaic Cells

机译:在高效有机光伏电池中调整局部激子和电荷转移状态的杂交

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摘要

Decreasing the energy loss is one of the most feasible ways to improve the efficiencies of organic photovoltaic (OPV) cells. Recent studies have suggested that non-radiative energy loss (Enon-radloss ) is the dominant factor that hinders further improvements in state-of-the-art OPV cells. However, there is no rational molecular design strategy for OPV materials with suppressed Enon-radloss . Herein, taking molecular surface electrostatic potential (ESP) as a quantitative parameter, we establish a general relationship between chemical structure and intermolecular interactions. The results reveal that increasing the ESP difference between donor and acceptor will enhance the intermolecular interaction. In the OPV cells, the enhanced intermolecular interaction will increase the charge-transfer (CT) state ratio in its hybridization with the local exciton state to facilitate charge generation, but simultaneously result in a larger Enon-radloss . These results suggest that finely tuning the ESP of OPV materials is a feasible method to further improve the efficiencies of OPV cells.
机译:降低能量损失是提高有机光伏(OPV)细胞效率的最可行方法之一。最近的研究表明,非辐射能量损失(ENON-RADLOSS)是阻碍最先进的OPV细胞进一步改善的显性因素。然而,具有抑制Enon-radloss的OPV材料没有合理的分子设计策略。这里,采用分子表面静电电位(ESP)作为定量参数,我们建立了化学结构与分子间相互作用之间的一般关系。结果表明,增加供体和受体之间的esp差异将增强分子间相互作用。在OPV细胞中,增强的分子间相互作用将增加其与局部激子状态的杂交中的电荷转移(CT)态比,以便于充电,但同时导致更大的Enon-Radloss。这些结果表明,精细调整OPV材料的ESP是一种可行的方法,可以进一步提高OPV细胞的效率。

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