Chapman Craig T, Liang Wenkel, Li Xiaosong
Department of Chemistry, University of Washington, Seattle, Washington 98195-1700, United States.
J Phys Chem Lett. 2011 May 19;2(10):1189-92. doi: 10.1021/jz200339y. Epub 2011 Apr 29.
The use of fullerene derivatives as electron donors in bulk heterojunctions is a promising development in the search for efficient energy conversion in hybrid solar cells. A long-lived photoexcited electron-hole pair will give rise to increased efficiency in photoenergy conversion. One way to prevent fast electron-hole recombination is to engineer fullerene derivatives that exhibit intrinsic electron-hole separation through accessible charge-transfer excited states. In this letter, the dynamics of photoexcited electron-hole pairs in a C60 derivative is studied using the real-time time-dependent density functional theory. Although the charge-transfer excited state is not directly accessible from the ground state, intrinsic coherent electron-hole separation is observed following photoexcition as a result of direct coupling between excited states. Ultrafast charge-transfer dynamics is the dominant phenomenon in <60 fs after visible photoexcitation. This work provides insights into the characteristics of ultrafast dynamics in photoexcited fullerene derivatives, and aids in the rational design of efficient solar cells.
在体异质结中使用富勒烯衍生物作为电子供体,是寻找高效混合太阳能电池能量转换的一个有前景的发展方向。长寿命的光激发电子 - 空穴对将提高光能转换效率。防止快速电子 - 空穴复合的一种方法是设计通过可及的电荷转移激发态表现出固有电子 - 空穴分离的富勒烯衍生物。在这封信中,使用实时含时密度泛函理论研究了C60衍生物中光激发电子 - 空穴对的动力学。尽管电荷转移激发态不能直接从基态到达,但由于激发态之间的直接耦合,光激发后观察到了固有相干电子 - 空穴分离。超快电荷转移动力学是可见光激发后<60 fs内的主要现象。这项工作深入了解了光激发富勒烯衍生物中超快动力学的特性,并有助于合理设计高效太阳能电池。