论文标题
轨道分辨的单线裂变观察
Orbital-resolved Observation of Singlet Fission
论文作者
论文摘要
单线裂变可能会提高光伏效率[通过将单线激子转换为两个三重态激子,从而使激发荷载流子的数量增加一倍。单线裂变的主要步骤是相关三重序的超快创建。尽管已经提出了几种解释这一步骤的机制,但没有一种共识。挑战在于跟踪瞬态激子状态。在这里,我们使用时间和角度分辨的光发射光谱来观察晶体五苯甲状腺中单线裂变的主要步骤。我们的结果表明,在最低的明亮单重激子中,Frenkel和电荷转移状态的杂交具有电荷转移介导的机制。我们获得了有关动量图中记录的激子函数的定位和轨道特征的深入了解。这使我们能够直接比较单线和BitRiplet激子的定位,并根据其轨道特征分解势力重叠的状态。轨道和定位 - 解决多体动力学有望深入了解分子系统和拓扑材料的力学。
Singlet fission may boost photovoltaic efficiency [by transforming a singlet exciton into two triplet excitons and thereby doubling the number of excited charge carriers. The primary step of singlet fission is the ultrafast creation of the correlated triplet pair. While several mechanisms have been proposed to explain this step, none has emerged as a consensus. The challenge lies in tracking the transient excitonic states. Here we use time- and angle-resolved photoemission spectroscopy to observe the primary step of singlet fission in crystalline pentacene. Our results suggest a charge-transfer mediated mechanism with a hybridization of Frenkel and charge-transfer states in the lowest bright singlet exciton. We gained intimate knowledge about the localization and the orbital character of the exciton wave functions recorded in momentum maps. This allowed us to directly compare the localization of singlet and bitriplet excitons and decompose energetically overlapping states based on their orbital character. Orbital- and localization- resolved many-body dynamics promise deep insights into the mechanics governing molecular systems and topological materials.