论文标题
单线激子裂变的核动力学:五苯单晶的直接观察
Nuclear dynamics of singlet exciton fission: a direct observation in pentacene single crystals
论文作者
论文摘要
Singlet激子裂变(SEF)是开发有效光电设备的关键过程。这个过程中涉及的核结构和动态很少直接直接探测,但对SEF特性产生巨大影响。在这里,我们直接使用飞秒电子衍射在单晶五苯苯乙烯中伴随SEF过程的核动力学。数据揭示了1 Thz处的相干原子运动,不相互的运动以及代表三重态激子的二极分子特征的各向异性晶格失真。结合了分子动力学模拟,时间依赖性密度功能理论和实验结构因子分析,相干运动被确定为沿其长轴的五苯烯分子的集体滑动运动。这种运动改变了相邻分子之间的激子耦合。我们的发现表明,远程动作在电子相关的三胞胎对的瓦解中起着决定性作用,并阐明了为什么SEF发生在Ultrafast TimeScales上。
Singlet exciton fission (SEF) is a key process in the development of efficient opto-electronic devices. An aspect that is rarely probed directly, and yet has a tremendous impact on SEF properties, is the nuclear structure and dynamics involved in this process. Here we directly observe the nuclear dynamics accompanying the SEF process in single crystal pentacene using femtosecond electron diffraction. The data reveal coherent atomic motions at 1 THz, incoherent motions, and an anisotropic lattice distortion representing the polaronic character of the triplet excitons. Combining molecular dynamics simulations, time-dependent density functional theory and experimental structure factor analysis, the coherent motions are identified as collective sliding motions of the pentacene molecules along their long axis. Such motions modify the excitonic coupling between adjacent molecules. Our findings reveal that long-range motions play a decisive part in the disintegration of the electronically correlated triplet pairs, and shed light on why SEF occurs on ultrafast timescales.