材料科学
富勒烯
离子
接受者
电荷(物理)
化学物理
光化学
纳米技术
凝聚态物理
有机化学
化学
物理
量子力学
作者
Junjun Guo,Martin V. Appleby,Kui Ding,Tong Shan,James D. Shipp,Igor V. Sazanovich,Dimitri Chekulaev,Zhuoran Qiao,Ricardo Fernández‐Terán,Rachel Crespo‐Otero,Nicola Gasparini,Hongliang Zhong,Julia A. Weinstein,Tracey M. Clarke
标识
DOI:10.1002/aenm.202404926
摘要
Abstract Non‐fullerene acceptors have revolutionised organic photovoltaics. However, greater fundamental understanding is needed of the crucial relationships between molecular structure and photophysical mechanisms. Herein, a combination of spectroscopic, morphology, and device characterization techniques are used to explore these relationships for a high‐performing non‐fullerene acceptor, anti‐PDFC. It focuses on transient absorption spectroscopy across multiple timescales and ultrafast time‐resolved vibrational spectroscopy to acquire the “holy grail” of simultaneous structural and dynamic information for anti‐PDFC and its blend with the well‐known conjugated polymer PM6. Most significantly, it is observed that the singlet exciton of anti‐PDFC is localised on the perylene diimide central core of the molecule, but the radical anion is primarily localised on the fluorinated indene malonitrile terminal units (which are common to many state‐of‐the‐art non‐fullerene acceptors, including the Y6 family). This electron transfer from the central core to the termini of an adjacent molecule is facilitated by a close interaction between the termini and the central core, as evidenced by single crystal diffraction data and excited state calculations. Finally, the very efficient charge extraction measured for PM6:anti‐PDFC photovoltaic devices may be correlated with this anion localization, enabling effective charge transport channels and thus enhancing device performance.
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