论文标题
钾含钾含量的内he骨内膜载体中的超快电荷载体分离sc $ _3 $ n@c $ _ {80} $薄膜
Ultrafast charge carrier separation in Potassium-intercalated endohedral metallofullerene Sc$_3$N@C$_{80}$ thin films
论文作者
论文摘要
分子材料已成为用于光伏和轻度收获应用的高度可调材料。这类材料最严重的挑战是将电荷载体捕获到绑定的电子孔对中,这严重限制了自由载体的产生。在这里,我们证明了在碱金属插入时内膜甲基氟列烯络合物的薄膜的激子动力学的显着修饰。对于Sc $ _3 $ n@c $ _ {80} $薄膜的示例性情况,我们表明钾的插入导致额外的放松通道,以防止光学激发的电荷转移 - 转移激子防止诱发excitons在长期使用的Frenkel Exciton样状态中。取而代之的是,k插入导致超快激烈的激子解离,最有可能与自由电荷载体产生相一致。通过这种方式,我们提出了分子膜的碱金属掺杂,作为增强光伏材料中光线载体转换效率的新方法。
Molecular materials have emerged as highly tunable materials for photovoltaic and light-harvesting applications. The most severe challenge of this class of materials is the trapping of charge carriers in bound electron-hole pairs, which severely limits the free charge carrier generation. Here, we demonstrate a significant modification of the exciton dynamics of thin films of endohedral metallofullerene complexes upon alkali metal intercalation. For the exemplary case of Sc$_3$N@C$_{80}$ thin films, we show that potassium intercalation results in an additional relaxation channel for the optically excited charge-transfer excitons that prevents the trapping of excitons in a long-lived Frenkel exciton-like state. Instead, K intercalation leads to an ultrafast exciton dissociation coinciding most likely with the generation of free charge carriers. In this way, we propose alkali metal doping of molecular films as a novel approach to enhance the light to-charge carrier conversion efficiency in photovoltaic materials.