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Tuning the Hybridization of Local Exciton and Charge‐Transfer States in Highly Efficient Organic Photovoltaic Cells
Authors:Ye Xu  Huifeng Yao  Lijiao Ma  Ling Hong  Jiayao Li  Qing Liao  Yunfei Zu  Jingwen Wang  Mengyuan Gao  Long Ye  Jianhui Hou
Abstract: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 (urn:x-wiley:14337851:media:anie201915030:anie201915030-math-0001 ) 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 urn:x-wiley:14337851:media:anie201915030:anie201915030-math-0002 . 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 urn:x-wiley:14337851:media:anie201915030:anie201915030-math-0003 . These results suggest that finely tuning the ESP of OPV materials is a feasible method to further improve the efficiencies of OPV cells.
Keywords:charge-transfer states  hybridization  intermolecular interactions  molecular electrostatic potential  non-radiative energy loss
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