激子
声子
材料科学
载流子
有机太阳能电池
电子
辐射传输
光电子学
自发辐射
声子散射
凝聚态物理
散射
格子(音乐)
化学物理
分子物理学
化学
物理
光学
聚合物
量子力学
复合材料
声学
激光器
作者
Zhongwei Ge,Jiawei Qiao,Yun Li,Jiali Song,Xiaopeng Duan,Zhen Fu,Haixia Hu,Renqiang Yang,Yin Hang,Xiaotao Hao,Yanming Sun
标识
DOI:10.1002/anie.202413309
摘要
Strong electron‐phonon coupling can hinder exciton transport and induce undesirable non‐radiative recombination, resulting in a shortened exciton diffusion distance and constrained exciton dissociation in organic solar cells (OSCs). Therefore, suppressing electron‐phonon coupling is crucially important for achieve high‐performance OSCs. Here, we employ the solid additive to regulating electron‐phonon coupling in OSCs. The planar configuration of SA1 confers a significant advantage in suppressing lattice vibrations in the active layers, reducing the scattering of excitons by phonons caused by lattice vibrations. Consequently, a slow but sustained hole transfer process is identified in the SA1‐assisted film, indicating an enhancement in hole transfer efficiency. Prolonged exciton diffusion length and exciton lifetime are achieved in the blend film processed with SA1, attributed to a low non‐radiative recombination rate and low energetic disorder for charge carrier transport. As a result, a high efficiency of 20% was achieved for ternary device with a remarkable short‐circuit current. This work highlights the important role of suppressing electron‐phonon coupling in improving the photovoltaic performance of OSCs.
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